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<art>
   <ui>ar2758</ui>
   <ji>ARJ</ji>
   <fm>
      <dochead>Review</dochead>
      <bibl>
         <title>
            <p>Developments in the scientific understanding of rheumatoid arthritis</p>
         </title>
         <aug>
            <au ca="yes" id="A1">
               <snm>Goronzy</snm>
               <mi>J</mi>
               <fnm>J&#246;rg</fnm>
               <insr iid="I1"/>
               <email>jgoronz@emory.edu</email>
            </au>
            <au id="A2">
               <snm>Weyand</snm>
               <mi>M</mi>
               <fnm>Cornelia</fnm>
               <insr iid="I1"/>
               <email>cweyand@emory.edu</email>
            </au>
         </aug>
         <insg>
            <ins id="I1">
               <p>Lowance Center for Human Immunology and Rheumatology, Department of Medicine, Emory University School of Medicine, Atlanta, GA 30322, USA</p>
            </ins>
         </insg>
         <source>Arthritis Research &amp; Therapy</source>
         <issn>1478-6354</issn>
         <pubdate>2009</pubdate>
         <volume>11</volume>
         <issue>5</issue>
         <fpage>249</fpage>
         <url>http://arthritis-research.com/content/11/5/249</url>
         <xrefbib>
            
         <pubidlist><pubid idtype="pmpid">19835638</pubid><pubid idtype="doi">10.1186/ar2758</pubid></pubidlist></xrefbib>
      </bibl>
      <history>
         <pub>
            <date>
               <day>14</day>
               <month>10</month>
               <year>2009</year>
            </date>
         </pub>
      </history>
      <cpyrt>
         <year>2009</year>
         <collab>BioMed Central Ltd</collab>
      </cpyrt>
      <abs>
         <sec>
            <st>
               <p>Abstract</p>
            </st>
            <p>Rheumatoid arthritis (RA) is recognized to be an autoimmune disease that causes preclinical systemic abnormalities and eventually leads to synovial inflammation and destruction of the joint architecture. Recently identified genetic risk factors and novel insights from animal models of spontaneous arthritis have lent support to the concept that thymic selection of an autoreactive T-cell repertoire is an important risk factor for this disease. With advancing age, defects in the homeostatic control of the T-cell pool and in the setting of signaling thresholds lead to the accumulation of pro-inflammatory T-effector cell populations and loss of tolerance to neo-antigens, such as citrullinated peptides. As the breakdown of tolerance to modified self-antigens can precede synovitis by decades, repair of homeostatic defects may open a unique window of opportunity for preventive interventions in RA. The end result of RA, destruction of cartilage and bone, appears to be driven by cytokine- and cell contact-induced activation of synoviocytes and monocytic cells, some of which differentiate into tissue-destructive osteoclasts. Targeting mediators involved in this process has greatly improved the management of this chronic inflammatory syndrome.</p>
         </sec>
      </abs>
   </fm>
   <meta>
      <classifications>
         <classification id="sbr2008" subtype="review_series_title" type="BMC">The Scientific Basis of Rheumatology: A Decade of Progress</classification>
         <classification id="sbr2008" subtype="review_series_editor" type="BMC">Peter Lipsky and Ravinder Maini</classification>
      </classifications>
   </meta>
   <bdy>
      <sec>
         <st>
            <p>Introduction</p>
         </st>
         <p>Understanding of the chronic inflammatory disease rheumatoid arthritis (RA) has evolved considerably during the past decade. Introduction of novel therapeutic strategies has had a major impact not only on how we treat affected patients but also on how we conceptualize the disease process <abbrgrp><abbr bid="B1">1</abbr></abbrgrp>. RA has served as a model to enhance our knowledge of the pivotal role played by cytokines during the effector stages of human disease; has been instrumental in clarifying the place of cytokines in the maintenance and chronicity of inflammation; and has been instrumental in deciphering the involvement of cytokine networks in tissue damage <abbrgrp><abbr bid="B2">2</abbr><abbr bid="B3">3</abbr></abbrgrp>.</p>
         <p>This enormous progress was made possible by the introduction of cytokine-directed therapies, the prototype of which is the neutralization of tumor necrosis factor (TNF)-&#945; activity <abbrgrp><abbr bid="B4">4</abbr></abbrgrp>. Inhibition of IL-6, another apparently effective treatment, is entering clinical application <abbrgrp><abbr bid="B5">5</abbr></abbrgrp>, and additional cytokine inhibitors are currently in clinical studies <abbrgrp><abbr bid="B6">6</abbr></abbrgrp>. The availability of this therapeutic armamentarium has fundamentally changed the management of RA and has re-emphasized the primarily inflammatory character of this autoimmune syndrome. In support of the concept that cytokine-driven inflammation and not uncontrolled proliferation of synoviocytes is the primary disease process, inflammatory markers have emerged as the best predictors of clinical outcome <abbrgrp><abbr bid="B1">1</abbr></abbrgrp>.</p>
         <p>As much as we have learned about the cytokines that are involved in the disease process and can be therapeutically targeted, our understanding of the upstream mechanisms that eventually lead to a destructive inflammatory reaction has received less attention. However, there is agreement within the scientific community that changing RA from a manageable into a curable disease entity will eventually require identification of etiologic factors and initiating pathways. RA is not a prototypic autoimmune disease such as type 1 diabetes mellitus or autoimmune thyroid disease, in which a failure in tolerance to a tissue-specific antigen results in selective and organ-destructive immune responses. Although the synovial inflammation is clinically prominent, the disease is systemic at all stages. The two most characteristic auto-antibodies, rheumatoid factor and antibodies to citrullinated peptides, are directed at common antigens widely expressed outside of the joint; their presence can precede synovial inflammation by decades <abbrgrp><abbr bid="B7">7</abbr><abbr bid="B8">8</abbr></abbrgrp>. Systemic complications manifest themselves as rheumatoid nodules, rheumatoid vasculitis, Felty's syndrome, or interstitial lung disease.</p>
         <p>Interestingly, major organ manifestations of RA have become less frequent in clinical practice <abbrgrp><abbr bid="B9">9</abbr></abbrgrp>. This decline in incidence started in the 1980s, before aggressive treatment of RA was introduced and the advent of biologics, suggesting that not only treatment but also changes in lifestyle and environment influence the clinical pattern of RA. As we move from successful palliative management to the goal of curative and preventive interventions, it is important to understand the mechanisms that initiate the disease and to identify the endogenous and environmental determinants that cause pathology upstream of synovial inflammation.</p>
      </sec>
      <sec>
         <st>
            <p>Clues to RA pathogenesis</p>
         </st>
         <sec>
            <st>
               <p>Genetic risk factors in humans</p>
            </st>
            <p>Genetic factors have a substantial influence on determining the susceptibility to develop RA. Twin studies have demonstrated a fourfold higher concordance rate in monozygotic (15%) than in dizygotic (3.6%) twins <abbrgrp><abbr bid="B10">10</abbr></abbrgrp>. The risk in siblings of patients compared with that in a 'normal' population has been estimated at between two- and 17-fold greater <abbrgrp><abbr bid="B11">11</abbr></abbrgrp>. It is now clear that the relative risk for each genetic polymorphism is rather minor, making it unlikely that individual genetic polymorphisms will gain value in RA diagnosis or in identifying healthy individuals at risk. Also, preliminary studies, mostly of anti-TNF-treated patients, have indicated that large cohorts will be necessary to identify genetic polymorphisms that correlate with treatment response and that predictive power in individual cases will be small <abbrgrp><abbr bid="B12">12</abbr></abbrgrp>. The primary promise of identifying disease-associated genes lies in the potential to define pathways that are important in disease pathogenesis. Recent advances made in linkage and in genome-wide association studies and the availability of large RA cohorts have allowed several novel risk genes to be identified. Although none of them was an obvious candidate gene, it is of interest to note that all of the confirmed disease-associated genes represent genes that are involved in immune responses, again emphasizing the immune pathogenesis of the disease.</p>
            <p>The only genetic region that has emerged in linkage and in genome-wide association studies in all ethnic groups is the major histocompatibility complex (MHC) region <abbrgrp><abbr bid="B13">13</abbr></abbrgrp>. The strength of the association varies significantly, depending upon the ethnic group <abbrgrp><abbr bid="B14">14</abbr></abbrgrp>, but the shared epitope hypothesis - first formulated during the 1980s <abbrgrp><abbr bid="B15">15</abbr></abbrgrp> - has held up. Human leukocyte antigen (HLA)-DRB1 alleles expressing the amino acid sequence stretch Q/R-K/R-R-A-A at positions 70 to 74 are the major risk factor within the MHC region in individuals of diverse ethnic origin; for example, <it>HLA-DRB1*0101</it>, <it>*0401</it>, and <it>*0404 </it>in individuals of European ancestry or <it>*0405 </it>and <it>*0901 </it>in Asians. In addition to disease-associated alleles, a disease protective HLA-DRB1 polymorphism (DERAA) may exist; however, this notion of an active protective mechanism versus the absence of a disease risk gene is difficult to ascertain. HLA alleles appear to be more closely associated with the presence of antibodies to IgG Fc or to citrullinated peptides than with RA itself <abbrgrp><abbr bid="B16">16</abbr><abbr bid="B17">17</abbr></abbrgrp>, suggesting that the polymorphisms primarily predispose to autoantibody production and that seronegative RA is fundamentally different from seropositive RA. Only <it>DRB1*0401 </it>and <it>*0405 </it>carry relative risks greater than 3; all other epitope-positive alleles contribute only a minor risk. Overall, it has been estimated that HLA polymorphisms account for 30% to 50% of the genetic load <abbrgrp><abbr bid="B18">18</abbr></abbrgrp>.</p>
            <p>All other disease risk genes identified so far confer relative risks of about 1.3 to 1.5. Although these disease risk genes have been confirmed in independent studies, their association is not universal but occurs only within the context of particular ethnic backgrounds. A polymorphism within the <it>PTPN22 </it>gene has been unequivocally associated with RA in several studies in Canada, Europe, and the USA <abbrgrp><abbr bid="B19">19</abbr><abbr bid="B20">20</abbr><abbr bid="B21">21</abbr></abbrgrp>. The polymorphism is responsible for an amino acid exchange from an arginine to a tryptophan within the coding region of the gene. This polymorphism represents a minor allele that is infrequent in healthy control individuals as well as in the RA population (8.7% versus 14.4%) <abbrgrp><abbr bid="B22">22</abbr></abbrgrp>. A disease association in the Japanese population has not been found <abbrgrp><abbr bid="B23">23</abbr></abbrgrp>; in fact, the polymorphism does not exist in Asians <abbrgrp><abbr bid="B24">24</abbr></abbrgrp>. The PTPN22 protein is a tyrosine phosphatase that exerts negative feedback regulation in T-cell receptor (TCR) signaling <abbrgrp><abbr bid="B25">25</abbr></abbrgrp>. The phosphatase binds to the regulatory kinase Csk; the complex of PTPN22 and Csk is responsible for terminating TCR signaling by phosphorylating Lck at position 505 and dephosphorylating Lck at position 394. The genetic polymorphism acts by directly modifying the phosphatase activity of PTPN22 and/or controlling its binding to Csk <abbrgrp><abbr bid="B26">26</abbr></abbrgrp>.</p>
            <p>Surprisingly, studies have shown that the polymorphism is a gain-of-function mutation <abbrgrp><abbr bid="B27">27</abbr></abbrgrp> (the carriers of the polymorphism are more likely to terminate TCR signaling), which is counterintuitive as a risk factor for an autoimmune disease. It has therefore been proposed that the underlying mechanism does not involve signaling of peripheral T cells, but that the signaling defect impairs negative thymic selection, resulting in the selection of an autoreactive repertoire. In this model, a defect in central tolerance sets the stage for the eventual development of a chronic inflammatory disease. This model not only applies to RA but also to a number of autoimmune syndromes, including type 1 diabetes mellitus, systemic lupus erythematosus, juvenile idiopathic arthritis, Graves' disease and vitiligo, each of which has been found to be associated with the <it>PTPN22 </it>polymorphism <abbrgrp><abbr bid="B28">28</abbr></abbrgrp>.</p>
            <p>A genetic polymorphism of peptidylarginine deiminase 4 (<it>PADI4</it>) is important in the Asian population <abbrgrp><abbr bid="B29">29</abbr><abbr bid="B30">30</abbr><abbr bid="B31">31</abbr></abbrgrp>. This polymorphism could very well play a role in the citrullination of proteins and therefore influence the development of antibodies to citrullinated antigens, which are among the auto-immune hallmarks of RA. Although this polymorphism also exists in Caucasian populations, an association with RA could not be demonstrated <abbrgrp><abbr bid="B32">32</abbr><abbr bid="B33">33</abbr><abbr bid="B34">34</abbr><abbr bid="B35">35</abbr></abbrgrp>. Because antibodies to citrullinated antigens are a general phenomenon in RA, independent of ethnicity, the meaning of this discrepancy is currently unclear.</p>
            <p>Three additional risk regions have been identified during the past year. All three of these genetic regions have in common that they confer a 50% risk increase and represent a single nucleotide polymorphism (SNP) close to an immune response gene. The functional implications of these disease risk regions are unclear, and it is therefore premature to develop pathogenetic models. Linkage studies and subsequent SNP mapping identified a region on chromosome 1q in the third intron of the <it>STAT4 </it>gene <abbrgrp><abbr bid="B36">36</abbr></abbrgrp>. The association originally identified in a North American study was confirmed in a Swedish and in a Korean cohort <abbrgrp><abbr bid="B37">37</abbr></abbrgrp>. An influence of the polymorphism on <it>STAT4 </it>transcription or function could have implications for signal calibration of a number of cytokine receptors, including type I IFN, IL-12, and IL-23. Whole-genome association studies identified two additional regions, one on chromosome 6q23 and one on chromosome 9q33-34. One SNP on chromosome 6q23 is between the genes encoding oligodendrocyte lineage transcription factor 3 and TNF-&#945;-induced protein 3 <abbrgrp><abbr bid="B38">38</abbr><abbr bid="B39">39</abbr></abbrgrp>. TNF-&#945;-induced protein 3, if confirmed to be the relevant variant, would be of interest because it functions as a negative regulator of nuclear factor-&#954;B activation in response to Toll-like receptors, and mice deficient for TNF-&#945;-induced protein 3 develop an auto-inflammatory syndrome <abbrgrp><abbr bid="B40">40</abbr><abbr bid="B41">41</abbr><abbr bid="B42">42</abbr></abbrgrp>. The second region, on chromosome <it>9q33-34</it>, was confirmed in independent candidate gene studies and maps between the complement 5 gene and the TNF receptor-associated factor 1 <abbrgrp><abbr bid="B43">43</abbr><abbr bid="B44">44</abbr><abbr bid="B45">45</abbr></abbrgrp>. The latter functions as a signaling molecule of receptors of the TNF receptor superfamily, including type 2 TNF receptor and CD40 ligand. Again, it remains to be determined whether functional polymorphisms can be identified. CD40 has also been identified as a disease-associated gene <abbrgrp><abbr bid="B46">46</abbr></abbrgrp>.</p>
            <p>The common theme that emerges from these genetic linkage and association studies is the possible involvement of signaling pathways transmitting activation signals into cells of the immune system (Figure <figr fid="F1">1</figr>). The major genetic risk factor continues to be shared epitope-expressing HLA-DRB1 alleles, which function in triggering the TCR. The minor genetic risk factors identified thus far are mostly related to signal calibrations, either to antigen recognition by TCRs or B-cell receptors, or in response to certain cytokines. The genetic polymorphisms are neither necessary nor sufficient for disease development because they are too infrequent and the associated risk is low; however, they indicate that these pathways are of importance in rendering an individual susceptible to RA development.</p>
            <fig id="F1">
               <title>
                  <p>Figure 1</p>
               </title>
               <caption>
                  <p>Shown is a T cell-APC interaction to illustrate biologic pathways involving rheumatoid arthritis-associated genes (indicated in italics)</p>
               </caption>
               <text>
                  <p><b>Shown is a T cell-APC interaction to illustrate biologic pathways involving rheumatoid arthritis-associated genes (indicated in italics)</b>. APC, antigen-presenting cell; IKK, I&#954;B kinase; MHC, major histocompatibility complex; NF-&#954;B, nuclear factor-&#954;B; TCR, T-cell receptor; Th, T-helper; TLR, Toll-like receptor; TNFR2, type 2 TNF receptor.</p>
               </text>
               <graphic file="ar2758-1"/>
            </fig>
         </sec>
         <sec>
            <st>
               <p>Mouse models of arthritis</p>
            </st>
            <p>Several mouse models with arthritis of spontaneous onset have become available during the past decade. Earlier animal models were based on the premise that RA results from an adaptive immune response to a joint-specific antigen. Models such as collagen-induced or proteoglycan-induced arthritis have been very helpful in providing evidence for the paradigm that autoimmunity to joint-specific antigens can lead to arthritis <abbrgrp><abbr bid="B47">47</abbr><abbr bid="B48">48</abbr></abbrgrp>; these models have allowed investigators to study effector mechanisms in the arthritic process and to test therapeutic interventions. In contrast to spontaneously occurring arthritis models, models of induced arthritis are already built upon the notion that synovial inflammation is mediated by a response to a particular autoantigen, and therefore they do not permit study of upstream mechanisms. One of the first models that exhibited spontaneous onset of arthritis was the TNF-&#945; transgenic mouse <abbrgrp><abbr bid="B49">49</abbr></abbrgrp>. The finding that the over-production of TNF-&#945; alone is sufficient to induce erosive arthritis emphasizes the sensitivity and response of synoviocytes to circulating cytokines, a concept that was first introduced by Feldman and Maini <abbrgrp><abbr bid="B4">4</abbr></abbrgrp> and is now the basis for the treatment of human disease with anti-TNF inhibitors.</p>
            <p>Four recently discovered mouse strains provide opportunities to decipher mechanisms upstream of synoviocyte activation. The spontaneous occurrence of arthritis in these models was unexpected, but all four models point toward T-cell repertoire selection as a critical determinant in initiating and sustaining arthritis (Figure <figr fid="F2">2</figr>). In the first model, Mathis and colleagues <abbrgrp><abbr bid="B50">50</abbr></abbrgrp> crossed a TCR transgene onto the NOD background. This TCR transgene happened to recognize a ubiquitously expressed protein, namely glucose-6 phosphate isomerase, but thymic negative selection failed to purge this autoreactive receptor from the T-cell repertoire <abbrgrp><abbr bid="B51">51</abbr></abbrgrp>. The mice, known as K/B &#215; N mice, develop an early onset, rapidly progressive arthritis that is mediated by autoantibodies that bind glucose-6 phosphate isomerase. Arthritis can be transferred by antibodies, clearly demonstrating that the generation of a particular autoantibody due to defective thymic selection can induce disease. Unfortunately, autoantibodies to glucose-6 phosphate isomerase do not appear to play a role in RA, therefore limiting the applicability of this model beyond the notion that thymic selection may be important.</p>
            <fig id="F2">
               <title>
                  <p>Figure 2</p>
               </title>
               <caption>
                  <p>Central and peripheral T-cell selection and differentiation as risk factors for synovial inflammation</p>
               </caption>
               <text>
                  <p><b>Central and peripheral T-cell selection and differentiation as risk factors for synovial inflammation</b>. HPC, hematopoietic progenitor cells; MHC, major histocompatibility complex; TCR, T-cell receptor.</p>
               </text>
               <graphic file="ar2758-2"/>
            </fig>
            <p>Similar conclusions can be drawn from a second TCR transgene model. Caton and colleagues <abbrgrp><abbr bid="B52">52</abbr></abbrgrp> engineered mice that expressed an influenza hemagglutinin antigen in combination with a transgene for hemagglutinin-reactive TCR. Different strains were constructed carrying TCR with varying affinity for the antigen <abbrgrp><abbr bid="B52">52</abbr><abbr bid="B53">53</abbr></abbrgrp>. Mice that expressed the low-affinity TCR failed negative selection and developed erosive arthritis, again illustrating the notion that inclusion of autoreactive TCR in the T-cell repertoire can eventually lead to synovial inflammation, mimicking the conditions in RA.</p>
            <p>Whereas the investigator teams led by Mathis and Caton used TCR transgenic mice to study central tolerance mechanisms and unexpectedly observed RA-like disease, investigators at the laboratory of Hirano <abbrgrp><abbr bid="B54">54</abbr></abbrgrp> engineered mice that lacked a negative feedback loop in gp130 signaling, creating conditions of unopposed cytokine signaling. gp130 is a necessary constituent of a class of cytokine receptors that bind IL-6, leukemia-inhibiting factor, oncostatin M, and IL-11. A single point mutation at position 759 of gp130 prevents recruitment of negative regulatory molecules, such as SHP-2 and SOCS-3, thus causing sustained signaling. Mice transgenic for this gp130 variant develop an erosive arthritis. Defective cytokine signal calibration as a risk factor for arthritis would be consistent with synovial fibroblasts being highly sensitive to cytokine action, similar to the TNF-hyper-producing mice. However, subsequent studies have shown that the pathogenesis in the gp130 mutant transgenic mice is dependent on T cells, because arthritis does not occur in RAG-deficient mice and includes polyclonal T-cell and B-cell stimulation with the production of rheumatoid factor and antinuclear antibodies. Subsequent studies of TCR transgenic mice expressing the gp130 mutant again described a defect in negative thymic selection.</p>
            <p>A defect in thymic function has been postulated also to cause the arthritis in the SKG mouse model. SKG mice have a spontaneously incurred loss-of-function mutation in the <it>Zap70 </it>gene <abbrgrp><abbr bid="B55">55</abbr></abbrgrp>. TCR signaling is therefore attenuated. Using appropriate TCR transgenic mouse systems, positive, as well as negative, selection in the thymus was found to be impaired. Both defects may contribute to the emergence of peripheral autoimmunity <abbrgrp><abbr bid="B56">56</abbr></abbrgrp>. Defective negative selection would bias the TCR repertoire toward autoreactivity. Defective positive selection may cause lymphopenia, which has been shown to be a risk factor for autoimmunity <abbrgrp><abbr bid="B57">57</abbr><abbr bid="B58">58</abbr></abbrgrp>. Peripheral T cells in the SKG mouse continue to be hypo-responsive, but adoptive transfer of these T cells into T/B-cell-deficient mice reproduces joint inflammation, clearly demonstrating that the T cells are sufficient to transfer disease. Given their low responsiveness, there must be a strong peripheral stimulus to overcome peripheral tolerance. In support of this notion, mice maintained in germ-free conditions do not develop disease. In fact, fungal infection and the IL-6-mediated development of T-helper-17 response appear to be instrumental in disease development <abbrgrp><abbr bid="B56">56</abbr></abbrgrp>.</p>
            <p>None of the genetic polymorphisms that cause disease in mice has been associated with RA. However, it is striking that all of these disease models involve TCR threshold calibration and thymic selection. Of the genes associated with RA, <it>HLA-DRB1 </it>and <it>PTPN22 </it>are also directly involved in TCR stimulation. In particular, the <it>PTPN22 </it>polymorphism attenuates TCR signaling and may be associated with defective negative selection.</p>
            <p>The mouse models have the potential to improve our understanding of how misguided T-cell responses translate into synovial inflammation and the other organ manifestations in RA patients. In the K/B &#215; N model, this transition is made by the induction of autoantibodies to a joint nonspecific antigen; the disease can be rapidly transferred by glucose-6 phosphate-specific autoantibodies. For the SKG and the gp130 mutant models, specific autoantigens have not been identified. Instead, these mice have a broadly autoreactive repertoire. Although the TCR signaling capacity is low, T cells develop into polyclonal effector T cells that mediate arthritis. Based on these animal models, Cope and colleagues <abbrgrp><abbr bid="B59">59</abbr><abbr bid="B60">60</abbr></abbrgrp> have postulated that a similar mechanism is functional in RA and that autoreactive T cells that are generally low reactive, but can be activated to develop into very potent effector cells, hold the pathogenetic key to RA. One factor that calibrates the TCR threshold in these T cells and enables their differentiation into effector T cells may be lymphopenia and compensatory homeostatic proliferation <abbrgrp><abbr bid="B61">61</abbr></abbrgrp>.</p>
         </sec>
         <sec>
            <st>
               <p>T-cell abnormalities in RA patients</p>
            </st>
            <p>In the majority of patients, RA occurs at an age when formation of the TCR repertoire has been concluded for many decades and thymic function is already severely reduced or has even completely ceased. Although possibly a predisposing factor, it is difficult to conceptualize how the process of central tolerance established early in life would only fail after many decades of disease-free survival. Rather, peripheral tolerance appears to be much more important in determining self/nonself distinction in a host older than 50 years (Figure <figr fid="F2">2</figr>).</p>
            <p>The most remarkable finding in the T-cell compartment of RA patients is that the T cells exhibit a signature that is reminiscent of accelerated immune aging <abbrgrp><abbr bid="B62">62</abbr></abbrgrp>. Of particular interest, this fingerprint of premature immune senescence is not limited to memory T cells but mostly affects antigen-inexperienced na&#239;ve T cells. One hallmark of immune aging is the loss of telomeric sequences. Telomeres are repeat sequences at the end of linear chromosomes that are being continuously shortened with each cycle of cellular division unless telomeric ends are replenished by telomerase. Telomeric sequences of proliferating cell populations decline with age; T cells, which are under explicit proliferative demand, are no exception to this rule. During adulthood telomeres in T cells shorten by 50 to 100 base pairs per year <abbrgrp><abbr bid="B63">63</abbr></abbrgrp>. In patients with RA, telomeric erosion in T cells is premature; with a loss of about 1,500 kilobases, RA T cells resemble control T cells that are 20 years older <abbrgrp><abbr bid="B64">64</abbr></abbrgrp>. Possible mechanisms include an increased replicative history and accumulated DNA damage arising from a defective DNA repair response in RA. Of interest, age-inappropriate loss of telomeric ends in RA is not limited to T cells, but also involves the myeloid lineage and hematopoietic precursor cells, suggesting a defect in the homeostasis of bone marrow-derived progenitor cells <abbrgrp><abbr bid="B65">65</abbr><abbr bid="B66">66</abbr></abbrgrp>.</p>
            <p>Recent studies have uncovered a defect in telomeric repair in RA T cells. Specifically, na&#239;ve T cells undergoing priming typically upregulate telomerase to repair the chromosomal ends. This induction of telomerase is blunted in RA T cells because of transcriptional repression of the human telomerase reverse transcriptase (hTERT) component of the enzyme telomerase <abbrgrp><abbr bid="B67">67</abbr></abbrgrp>. hTERT deficiency renders T cells from RA patients more susceptible to apoptosis, identifying a broader role for this enzyme in regulating T-cell fate. Knockdown of hTERT in healthy T cells impaired survival rates. Restoring telomerase activity in RA T cells rescued such cells from excessive apoptosis. In essence, telomeres and the telomeric surveillance machinery emerge as critical regulators of T-cell death and life. Inappropriate culling of T cells during the priming process potentially aggravates a vicious cycle of increased cell death, lymphopenia, compensatory homeostatic cell proliferation, and cellular senescence. Controlling nuclear integrity now emerges as a novel theme in assessing cell fate decisions in T cells, cells that are basically programmed to undergo cycles of expansion and contraction, with some of them living for extended time periods.</p>
            <p>A recent study has shed light on defects in DNA repair mechanisms in RA T cells, linking the accumulation of damaged DNA to deficiency in the ataxia telangiectasia mutated (ATM) surveillance and repair pathway. Again, the inability of RA T cells to effectively repair DNA breaks was associated with increased cell death, straining T-cell regenerative mechanisms <abbrgrp><abbr bid="B68">68</abbr></abbrgrp>. In support of this interpretation, TCR excision circles (TRECs) containing T cells are reduced in RA patients <abbrgrp><abbr bid="B64">64</abbr></abbrgrp>. TRECs are DNA episomes generated during TCR rearrangement <abbrgrp><abbr bid="B69">69</abbr></abbrgrp>. High numbers of TREC-positive T cells therefore reflect thymic activity, whereas decreased numbers are indicative of T-cell loss that is not compensated for by thymic production of new T cells <abbrgrp><abbr bid="B70">70</abbr></abbrgrp>. Telomeric erosion, increased susceptibility to cell death due to defective telomerase activity and DNA repair mechanisms, as well as peripheral loss of TREC-positive cells, are all consistent with a model in which RA patients have a history of lymphopenia and accelerated homeostatic proliferation <abbrgrp><abbr bid="B61">61</abbr></abbrgrp>.</p>
            <p>Homeostatic proliferation of na&#239;ve CD4<sup>+ </sup>and CD8<sup>+ </sup>T cells is dependent on recognition of MHC class II and class I molecules, respectively, and will therefore eventually be associated with peripheral selection of a T-cell repertoire with high affinity to self <abbrgrp><abbr bid="B71">71</abbr></abbrgrp>. In support of this interpretation, the diversity of the na&#239;ve TCR repertoire in patients with RA is contracted by a factor of about 10 <abbrgrp><abbr bid="B72">72</abbr></abbrgrp>. Thus, in addition to defective central thymic selection, peripheral selection over the years could set the stage for an autoimmune disposition. This model would also fit with the observation that the best characterized autoimmune responses in patients with RA are directed at neoantigens. A pathognomonic autoantibody in RA patients is that directed against citrullinated peptides, which are generated mostly in matrix molecules by converting an arginine to a citrullin <abbrgrp><abbr bid="B73">73</abbr></abbrgrp>. Even the second hallmark of RA, namely the antibody response to the constant region of IgG measured as rheumatoid factor, may be directed to neoantigens because glycosylation differences of the Fc fragment have been shown to be important in autoantibody recognition <abbrgrp><abbr bid="B74">74</abbr></abbrgrp>.</p>
            <p>Peripheral repertoire selection is only one of the mechanisms by which lymphopenia and compensatory homeostatic proliferation increase the risk of autoimmunity. In many spontaneous animal models of autoimmunity, a transient, often minute state of lymphopenia is a prerequisite for developing autoimmune disease. This was first described in the NOD mouse model of immune-mediated diabetes <abbrgrp><abbr bid="B57">57</abbr></abbrgrp>. Development of autoimmune phenomena in NOD mice, which are slightly lymphopenic at a young age, is dependent on IL-21-driven homeostatic proliferation. Similarly, Calzascia and coworkers <abbrgrp><abbr bid="B58">58</abbr></abbrgrp> demonstrated that homeostatic proliferation, in this case in response to IL-7, released autoreactive CD4<sup>+ </sup>cells from inhibitory networks. Lymphocyte depletion largely enhanced the activity of CD4<sup>+ </sup>T cells to license dendritic cells and to initiate a cascade of CD4<sup>+ </sup>and CD8<sup>+</sup>auto-reactive responses, eventually leading to disease. As one possible mechanism, homeostatic proliferation lowers the TCR threshold that antigen recognition must surpass to deliver an activating signal. Recent studies have provided direct evidence supporting a model in which TCR calibration is altered in RA patients. RA T cells have a spontaneously hyper-responsive Ras/Raf-MEK-ERK (Ras/Raf-mitogen-activated protein kinase kinase/extracellular signal-regulated kinase) module. As originally proposed by Germain and colleagues <abbrgrp><abbr bid="B75">75</abbr><abbr bid="B76">76</abbr></abbrgrp>, increased extracellular signal-regulated kinase activity inhibits a negative feedback loop in response to TCR stimulation and therefore lowers the TCR activation threshold, eventually breaking tolerance. Hyperactivity of this pathway in healthy T cells can be induced by exposure to homeostatic cytokines <abbrgrp><abbr bid="B77">77</abbr></abbrgrp>. Within the panel of homeostatic cytokines, IL-7 appears to be reduced in RA <abbrgrp><abbr bid="B78">78</abbr></abbrgrp>; however, IL-15 and IL-21 are increased <abbrgrp><abbr bid="B79">79</abbr><abbr bid="B80">80</abbr></abbrgrp>, and this increase appears to precede disease development.</p>
            <p>Excessive proliferative turnover and premature senescence not only change the phenotype and function of na&#239;ve peripheral CD4<sup>+ </sup>cells, but also have consequences for the memory subpopulations. Again, these appear to be global phenomena and not limited to a small fraction of expanded antigen-specific T cells. Telomeres in the RA memory population are shortened, and dominant oligoclonal T-cell populations are more frequently detected <abbrgrp><abbr bid="B64">64</abbr><abbr bid="B81">81</abbr><abbr bid="B82">82</abbr><abbr bid="B83">83</abbr></abbrgrp>. These populations have a phenotype of effector memory or even terminally differentiated effector cells. CD28 and CD27 are lost <abbrgrp><abbr bid="B84">84</abbr></abbrgrp>, expression of lymphocyte function-associated antigen-1 (LFA-1) is increased <abbrgrp><abbr bid="B85">85</abbr></abbrgrp>, and the chemokine receptor profile is consistent with the differentiation state of effector cells <abbrgrp><abbr bid="B86">86</abbr></abbrgrp>. End-differentiated memory T cells in RA frequently acquire expression of the fractalkine receptor CX<sub>3</sub>CR1 (chemokine [C-X<sub>3</sub>-C motif] receptor 1) <abbrgrp><abbr bid="B87">87</abbr></abbrgrp>, as well as regulatory receptors that are usually found on natural killer cells, such as natural-killer group 2, member D (NKG2D) and killer immunoglobulin-like receptors <abbrgrp><abbr bid="B88">88</abbr><abbr bid="B89">89</abbr><abbr bid="B90">90</abbr></abbrgrp>. In the periphery, these cells are high producers of effector cytokines and are capable of perforin-mediated cytotoxicity <abbrgrp><abbr bid="B91">91</abbr><abbr bid="B92">92</abbr></abbrgrp>. Their frequency in peripheral blood correlates with disease severity and the presence of extra-articular manifestations including co-morbidities such as cardiovascular disease <abbrgrp><abbr bid="B93">93</abbr><abbr bid="B94">94</abbr><abbr bid="B95">95</abbr></abbrgrp>. Because of their phenotype and functional properties, these cells are prone to be tissue invasive and to be regulated by environmental cues (cytokines; stress-induced ligands binding to NKG2D; MHC class I molecules engaging killer immunoglobulin-like receptors) rather than the classical costimulatory signals.</p>
            <p>It is conceivable and even likely that the forces that drive remodeling of the T-cell compartment also affect the frequency and function of regulatory T cells. Depletion or functional degeneration of regulatory T cells could cause a tolerance defect and favor inflammatory responses. The data on regulatory T cells in RA thus far are conflicting. The frequencies of these cells appear to be increased, but their function is compromised, possibly secondary to the effects of TNF-&#945; <abbrgrp><abbr bid="B75">75</abbr><abbr bid="B76">76</abbr><abbr bid="B77">77</abbr><abbr bid="B96">96</abbr></abbrgrp>.</p>
            <p>In the synovial tissue, most T cells exhibit features of lymphocyte exhaustion. Characteristic is a loss of the CD3 &#950;-chain <abbrgrp><abbr bid="B97">97</abbr></abbrgrp>. Over-expression of PD1, which has been implicated in lymphocyte exhaustion with chronic viral infections <abbrgrp><abbr bid="B98">98</abbr></abbrgrp>, has not yet been described. Several factors probably contribute to the exhausted state of synovial T cells, including chronic TCR stimulation and the redox state in the synovial tissue <abbrgrp><abbr bid="B99">99</abbr><abbr bid="B100">100</abbr></abbrgrp>. It is also possible that synovial T cells are not truly exhausted but activated by cytokines. Cytokine activation generates an effector function profile that may in part be responsible for the synovial inflammation <abbrgrp><abbr bid="B101">101</abbr></abbrgrp>. In fact, some of these features are reversible upon TNF withdrawal <abbrgrp><abbr bid="B102">102</abbr></abbrgrp>. Importantly, T-cell exhaustion should not be mistaken for T-cell anergy; the two states have different transcriptional profiles <abbrgrp><abbr bid="B103">103</abbr></abbrgrp>.</p>
         </sec>
         <sec>
            <st>
               <p>Characterization of novel autoantigens</p>
            </st>
            <p>Production of autoantibodies to the Fc portion of IgG, known as rheumatoid factors, has been the serologic hallmark of RA for the past five decades. Despite considerable effort, attempts to identify autoantibodies to joint-related antigens have yielded inconsistent results. Antigens that are now recognized as relatively specific targets for autoantibodies include the perinuclear factor and keratin. In 1998, van Venrooij and colleagues <abbrgrp><abbr bid="B104">104</abbr></abbrgrp> first reported that these antibodies were directed against deiminated peptides. Subsequent studies showed that the epitopes preferentially recognized in RA are citrullinated peptides of a number of different matrix proteins including fillaggrin, keratin, fibrinogen, and vimentin <abbrgrp><abbr bid="B73">73</abbr><abbr bid="B105">105</abbr></abbrgrp>. These antibodies can be measured through their recognition of cyclic citrullinated peptides, now commonly used in clinical practice. Based on these autoantibody profiles, RA patients fail to maintain or induce tolerance to post-translational modifications of common cellular proteins.</p>
            <p>Of note, another post-translational modification, glycosylation of IgG Fc, has been implicated in the generation of rheumatoid factors. IgG Fc glycosylation defects are not specific to RA but occur in a number of inflammatory conditions <abbrgrp><abbr bid="B106">106</abbr></abbrgrp>. Similarly, citrullination is not specific for RA or for the synovium, but occurs in most individuals with aging to a varying degree and in numerous tissues. Quantitative difference in the degree of citrullination may play a role in the initiation of an immune response. The finding that Asian RA patients are more likely to have inherited an enzyme variant of PADI-4 (peptidylarginine deiminase 4), the enzyme that is responsible for arginine deimination and citrullination, is consistent with this notion. In addition, smoking, which has been proposed to represent an environmental risk factor for RA, has been correlated with increased citrullination in lung tissue and generation of citrullinated peptide-specific antibodies <abbrgrp><abbr bid="B107">107</abbr></abbrgrp>. Smoking induced an anti-cyclic citrullinated peptide response only in individuals carrying a shared epitope allele, which fits with the immune response gene hypothesis of the HLA-DRB1 association of RA <abbrgrp><abbr bid="B108">108</abbr></abbrgrp>. For reasons unclear, an impact of smoking was observed in Europe but not in the USA <abbrgrp><abbr bid="B107">107</abbr><abbr bid="B109">109</abbr><abbr bid="B110">110</abbr></abbrgrp>.</p>
            <p>However, the primary defect in patients with RA appears not to be a defect in post-translational modification but a defect in inducing or maintaining peripheral tolerance, which is very much in line with the global changes in the T-cell compartment observed in patients with RA described above. If RA patients have a broad tolerance defect, then autoantibody responses to an increasing array of self-antigens must be expected. Indeed, Auger and colleagues <abbrgrp><abbr bid="B111">111</abbr></abbrgrp> identified antibodies to PADI-4 and several signaling molecules, including BRAF (v raf murine sarcoma viral oncogene homologue B1 catalytic domain), PKC&#946;1 (protein kinase C&#946;1), and PIP4K2C (phosphatylinositol 4 phosphate 5 kinase type II &#947;), using protein arrays. Goeb and colleagues <abbrgrp><abbr bid="B112">112</abbr></abbrgrp> used mass spectrometry to identify antibodies to glycolytic enzymes and to chaperones. Confirmatory studies and epitope mapping are needed, but preliminary data indicate that some but not all of these immune responses are once again directed against citrulline modifications.</p>
         </sec>
         <sec>
            <st>
               <p>Translating systemic autoreactivity into synovitis</p>
            </st>
            <p>Most of the abnormalities in the adaptive immune system in RA are systemic in nature, but in patients with established disease synovial manifestations clearly dominate. The question of how systemic abnormalities are translated into inflammation of the synovium is one of the major challenges in elucidating RA pathogenesis. Antibodies to citrullinated peptides and rheumatoid factors can predate the onset of joint manifestations by more than a decade <abbrgrp><abbr bid="B7">7</abbr><abbr bid="B8">8</abbr><abbr bid="B113">113</abbr></abbrgrp>, clearly demonstrating that they are not a consequence of disease and alone are not sufficient to induce disease. This prodromal stage appears to be longer among those patients who develop disease later in life <abbrgrp><abbr bid="B114">114</abbr></abbrgrp>, again emphasizing the role played by time and aging in pathogenesis. Similar to auto-antibodies, a case-control study from the Women's Health Study and the Nurses' Health Study <abbrgrp><abbr bid="B115">115</abbr></abbrgrp> found that elevated serum levels of soluble TNF receptor II (as a proxy for TNF-&#945;) and of IL-6 predated disease by up to 12 years. Similar conclusions apply to other cytokines, such as IL-15. In essence, autoimmunity and inflammation exist long before inflammatory lesions are established in the synovial membrane. Epidemiologic data currently do not support the notion of identifiable precipitating events, such as a trauma or an infection, which would turn systemic immune abnormalities into localized tissue inflammation. Rather, it appears that either cumulative changes or stochastically occurring instabilities precipitate the onset of symptoms, suggesting that there is a window of opportunity for preventive interventions.</p>
            <p>What is the role played by antigen-specific responses in synovitis? Citrullinated antigens exist in the synovial tissues, but they are hardly specific. An immune response to citrullinated antigens can induce arthritis, as demonstrated in HLA-DR4-IE transgenic mice with citrullinated fibrinogen <abbrgrp><abbr bid="B116">116</abbr></abbrgrp>. In contrast to RA, this arthritis was nonerosive. In the animal model of collagen-induced arthritis, the immune response to citrullinated antigens emerged as an important co-factor to amplify disease manifestations, but by itself it was not sufficient to induce disease <abbrgrp><abbr bid="B117">117</abbr></abbrgrp>. Adoptive transfer of antibodies to citrullinated collagen frequently induced arthritis in na&#239;ve mice, however, only when co-administered with antibodies to unmodified collagen <abbrgrp><abbr bid="B118">118</abbr></abbrgrp>.</p>
            <p>The best evidence for antigen-specific responses in synovial tissue comes from the synovial pathology. The synovial tissue is rich in dendritic cells, which can present antigen and support the activation of T cells <abbrgrp><abbr bid="B119">119</abbr><abbr bid="B120">120</abbr></abbrgrp>. About a quarter of the patients have lymphoid follicles with germinal centers, sophisticated structures that facilitate antigen recognition by B and T cells presented by follicular and myeloid dendritic cells <abbrgrp><abbr bid="B121">121</abbr></abbrgrp>. Developing these structures may be a decisive step in sustaining an autoimmune response in the tissue <abbrgrp><abbr bid="B122">122</abbr></abbrgrp>. Important mediators associated with synovial germinal center formation are lymphotoxin-&#945;<sub>1</sub>&#946;<sub>2</sub>, IL-7, a proliferation inducing-ligand (APRIL), and CXCL13 (chemokine [C-X-C motif] ligand 13) - cytokines that have also been implicated in the generation of secondary lymphoid structures <abbrgrp><abbr bid="B123">123</abbr></abbrgrp>. Somatic hypermutation of immunoglobulin genes demonstrate the full functionality of these follicles <abbrgrp><abbr bid="B124">124</abbr></abbrgrp>. The antigen recognized by T cells on myeloid dendritic cells and presented by follicular dendritic cells to B cells does not need to be locally produced, but can be taken up by follicular dendritic cells from the bloodstream and can be brought into the synovial tissue by migrating dendritic cells.</p>
            <p>Most RA patients do not have germinal centers and do not exhibit unequivocal evidence of antigen recognition in the synovial tissue, although subdued antigen-specific stimulation, as is often seen with exhausted lymphocytes, remains possible. Lymphocytes are scattered in the synovial sublining layer, and T cell-derived cytokines, with the exception of TNF-&#945; and IL-17, are not abundant. IL-17 was originally detected in human synovium from RA patients <abbrgrp><abbr bid="B125">125</abbr></abbrgrp>. Its pathogenetic importance in chronic inflammation has been suggested in a variety of murine model systems. It is attractive to speculate that T cell-derived IL-17 drives the synovial fibroblast activation and cytokine secretion that are characteristic of the rheumatoid synovium <abbrgrp><abbr bid="B126">126</abbr></abbrgrp>. The role played by IFN-&#947; as a T cell-derived cytokine is less clear in RA. Many T cells isolated out of the environment of the rheumatoid synovitis are able to produce IFN-&#947;, and studies have shown that the survival of macrophage-like synoviocytes is dependent on IFN-&#947; production <abbrgrp><abbr bid="B127">127</abbr></abbrgrp>. Furthermore, in humans, contrary to mice, IL-17 and IFN-&#947; are not mutually exclusive, and IFN-&#947;/IL-17 double-producing T cells are not infrequent. However, production of IFN-&#947; <it>in situ </it>is difficult to demonstrate, and treatment of RA patients with IFN-&#947; has at least not led to disease exacerbation. Synoviocytes are extremely sensitive to cytokine action. Given the multitude of pro- and anti-inflammatory cytokine activities in the synovial tissue, it is difficult to predict hierarchical organization. As recently reviewed, many different cytokines are or will soon be targeted in clinical studies, which will provide insights into the relative contributions made by individual cytokines to the disease process <abbrgrp><abbr bid="B2">2</abbr><abbr bid="B3">3</abbr><abbr bid="B6">6</abbr></abbrgrp>.</p>
            <p>In addition to cytokines, the inflammatory infiltrate influences resident synoviocytes through contact-dependent mechanisms (Figure <figr fid="F3">3</figr>). Dayer and colleagues <abbrgrp><abbr bid="B128">128</abbr></abbrgrp> first reported that T cells regulate the production of inflammatory cytokines and metalloproteinases by fibroblasts through cell-to-cell contact. In parallel, direct T cell-synoviocyte interaction inhibits the production of matrix proteins. A number of receptor-ligand interactions in the inflamed synovium have been identified <abbrgrp><abbr bid="B79">79</abbr><abbr bid="B129">129</abbr></abbrgrp>. Some of these receptors are constitutively expressed on tissue-infiltrating inflammatory cells, and the mere presence of a cellular infiltrate is sufficient to elicit the responses. Others are activation dependent; however, even for T cells, the activation may not require antigen recognition, but merely cytokine exposure.</p>
            <fig id="F3">
               <title>
                  <p>Figure 3</p>
               </title>
               <caption>
                  <p>Major tissue destructive pathways in the rheumatoid joint</p>
               </caption>
               <text>
                  <p><b>Major tissue destructive pathways in the rheumatoid joint</b>. <b>(a) </b>Osteoclast differentiation and <b>(b) </b>fibroblast-like synoviocyte (FLS) proliferation. CX<sub>3</sub>CR1, chemokine [C-X<sub>3</sub>-C motif] receptor 1; FLS, fibroblast-like synoviocyte; HPC, hematopoietic progenitor cells; ICAM, intercellular adhesion molecule; LFA, lymphocyte function-associated antigen; LT, lymphotoxin; M, macrophage; MHC, major histocompatibility complex; RANKL, receptor activator of nuclear factor-&#954;B ligand; SCF, stem cell factor; TCR, T-cell receptor; TNF, tumor necrosis factor; VEGF, vascular endothelial growth factor.</p>
               </text>
               <graphic file="ar2758-3"/>
            </fig>
            <p>NKG2D and its ligands MIC-A and MIC-B contribute to the persistence of the inflammatory infiltrate <abbrgrp><abbr bid="B88">88</abbr></abbrgrp>. Interaction of lymphocyte function-associated antigen-1 with intercellular adhesion molecule-2 influences synoviocyte fibroblastic activation and survival <abbrgrp><abbr bid="B85">85</abbr></abbrgrp>. The fractalkine receptor expressed on cytotoxic effector and terminally differentiated CD4<sup>+ </sup>T cells binds to cell-bound fractalkine on synovial fibroblasts <abbrgrp><abbr bid="B87">87</abbr></abbrgrp>. The interaction provides a reciprocal activation signal on T cells and synoviocytes, and the subsequent production of soluble fractalkine is a major growth factor for synovial fibroblasts <abbrgrp><abbr bid="B130">130</abbr></abbrgrp>. Cytokine-activated T cells can also directly interact with synovial fibroblasts through membrane-integrated TNF-&#945; expressed on the T cells <abbrgrp><abbr bid="B131">131</abbr></abbrgrp>. Most important is the expression of receptor activator of nuclear factor-&#954;B (RANK) ligand on CD4<sup>+ </sup>T cells and other infiltrating cells that promote bone erosion through differentiation of monocytic cells into osteoclasts <abbrgrp><abbr bid="B132">132</abbr></abbrgrp>. This list of receptor-ligand interactions is far from inclusive, but it illustrates how the interaction between inflammatory and resident cells develops an architecture that has the ability to be self-perpetuating and tissue damaging.</p>
         </sec>
      </sec>
      <sec>
         <st>
            <p>How does synovitis cause joint destruction?</p>
         </st>
         <p>If not appropriately treated, RA progressively leads to articular destruction and functional disability. In contrast to many tissue-specific autoimmune diseases, the tissue injury is not directly immune-mediated by antigen-specific antibodies or T cells, but is an active remodeling process of the synovium in response to the inflammatory attack.</p>
         <p>At least three components contribute to joint destruction: transformation of the synovium into a proliferative, tissue-invasive pannus; generation of osteoclasts that lead to local resorption of bone; and effects of cytokines on cartilage cell function and survival (Figure <figr fid="F3">3</figr>). The normal synovium is a thin layer of macrophage-like and fibroblast-like synoviocytes without an endothelial or epithelial layer and without a true basement membrane. Synovium produces extracellular matrix, ensures a low-resistance surface at joint interface, and possibly has a role in clearing debris. Cadherin-11 has been identified as a critical organizer in forming the synovial lining <abbrgrp><abbr bid="B133">133</abbr></abbrgrp>. Cadherins mediate homotypic cell-to-cell adhesion and are expressed in fibroblast-like synoviocytes. Absence of cadherin in mice results in a hypoplastic synovium <abbrgrp><abbr bid="B134">134</abbr></abbrgrp>, whereas forced expression in fibroblasts <it>in vitro </it>produces synovial lining-like structures <abbrgrp><abbr bid="B135">135</abbr></abbrgrp>. Of particular interest, targeting cadherin-11 suppresses arthritis <abbrgrp><abbr bid="B134">134</abbr></abbrgrp>. Cadherin-11-deficient mice do not develop erosive disease; blocking of cadherin-11 by monoclonal antibodies or fusion protein constructs prevents or treats arthritis in the appropriate animal models.</p>
         <p>Synovial fibroblasts are very responsive to a large number of stimuli, including cytokines and growth factors produced by the inflammatory infiltrate, and are also responsive to direct receptor-ligand interactions <abbrgrp><abbr bid="B133">133</abbr></abbrgrp>. In addition, the chemokine milieu in the synovial inflammation allows for the recruitment of fibroblast-like synoviocytes, as was recently demonstrated in mice chimeric for green fluorescent protein expression in the bone marrow <abbrgrp><abbr bid="B136">136</abbr></abbrgrp>. The synovium in these mice contained a large proportion of bone marrow-derived fibroblasts when arthritis was induced. The precise chemokines that control this recruitment are not known. Recruitment and local proliferation eventually form a hyperplastic membrane of syoviocytes that exhibits tissue-invasive character, targeting bone and cartilage. This neo-tissue has been termed 'pannus'. Several growth factors, including fibroblast growth factor, platelet-derived growth factor, transforming growth factor-&#946;, and fibronectin, promote synoviocyte proliferation. Studies in mouse models have shown that the tyrosine kinase inhibitor imatinib suppresses arthritis, presumably by inhibiting the platelet-derived growth factor receptor <abbrgrp><abbr bid="B137">137</abbr></abbrgrp>. Because activated and proliferating synovial fibroblasts produce many of their growth factors, the inflammatory response in the synovial membrane induces a self-perpetuating cycle of synovial fibroblast activation and proliferation.</p>
         <p>Activated synoviocytes, in particular in the pannus, produce matrix-degrading enzymes, such as aggrecanases and matrix metalloproteinases. Of particular relevance is the membrane type I matrix metalloproteinase, which has been shown to be a crucial promoter of synovial invasion <abbrgrp><abbr bid="B138">138</abbr></abbrgrp>. Silencing of this enzyme reduced the invasiveness of synovial fibroblasts <abbrgrp><abbr bid="B139">139</abbr></abbrgrp>. Matrix resorption and cartilage and bone invasion by synovial fibroblasts requires demineralization by osteoclasts <abbrgrp><abbr bid="B140">140</abbr></abbrgrp>. Formation of osteoclasts is, therefore, an essential component of erosive RA. Osteoclast differentiation is in part driven by RANK ligand, which is expressed on tissue-residing CD4<sup>+ </sup>T cells and on synovial fibroblasts and is upregulated by a number of proinflammatory cytokines. By engaging RANK, RANK ligand induces the differentiation of monocytic cells into osteoclasts. Osteoclast differentiation can be inhibited by osteoprotegerin, which does not ameliorate the inflammatory signs of disease but can prevent structural damage to the joint.</p>
      </sec>
      <sec>
         <st>
            <p>Conclusion</p>
         </st>
         <p>The success of anti-cytokine therapy in RA has revolutionized the management of this disease and has provided a paradigm for novel therapeutic avenues in a variety of other inflammatory syndromes. The fact that blocking the action of TNF-&#945; inhibits synovial inflammation and its destructive consequences is conclusive evidence that, at least at the effector stage, excess cytokines are of critical importance in RA. The past decade has seen the identification and molecular characterization of a multitude of cytokines, all of which may make their own contribution to the inflammatory battlefield. The latest in this collection is IL-17, which may or may not prove to be a valuable therapeutic target. Clinical studies in the next decade will decide which of these cytokines is acting at pivotal junctures in synovial inflammation and tissue damage. A selective approach will be beneficial only if cytokines do not act in parallel, because combination therapy blocking several cytokines appears to be unlikely due to the risk for unacceptable side effects as well as cost reasons.</p>
         <p>Preventive and curative interventions in RA will depend on identifying mechanisms upstream of the synovial inflammation. The most promising finding paving the way for potential preventive therapy relates to the more recent concept of a systemic prodromal stage preceding synovitis. Several immune pathologies appear to be characteristic for this preclinical phase of RA, including acceleration of immune aging, loss of tolerance to neoantigens, and differentiation and accumulation of effector cells with high inflammatory capacity. The results from genetic association and linkage studies, as well as the recently described mouse models of spontaneous arthritis, suggest a role of signal calibration downstream of antigen recognition and triggering of cytokine receptors; understanding these abnormalities may inform novel strategies of stopping RA before it ever reaches its tissue targets.</p>
      </sec>
      <sec>
         <st>
            <p>Abbreviations</p>
         </st>
         <p>HLA: human leukocyte antigen; hTERT: human telomerase reverse transcriptase; IFN: interferon; IL: interleukin; MHC: major histocompatibility complex; NKG2D: natural-killer group 2, member D; RA: rheumatoid arthritis; RANK: receptor activator of nuclear factor-&#954;B; SNP: single nucleotide polymorphism; TCR: T-cell receptor; TNF: tumor necrosis factor; TREC: T-cell receptor excision circle.</p>
      </sec>
      <sec>
         <st>
            <p>Competing interests</p>
         </st>
         <p>The authors declare that they have no competing interests.</p>
      </sec>
      <sec>
         <st>
            <p>Note</p>
         </st>
         <p>
            <b>
The Scientific Basis of Rheumatology: A Decade of Progress
</b>
         </p>
         <p>This article is part of a special collection of reviews, <it>The Scientific Basis of Rheumatology: A Decade of Progress,</it> published to mark <it>Arthritis Research &amp; Therapy</it>'s 10th anniversary.</p>
         <p>Other articles in this series can be found at: <url>http://arthritis-research.com/sbr</url></p>
      </sec>
   </bdy>
   <bm>
      <ack>
         <sec>
            <st>
               <p>Acknowledgements</p>
            </st>
            <p>This work was funded in part by grants from the National Institutes of Health (RO1 AR42527, RO1 AR41974, R01 AI44142, U19 AI57266, RO1 EY11916, and R01 AG15043). The authors thank Linda Arneson and Tamela Yeargin for help with preparing the manuscript.</p>
         </sec>
      </ack>
      <refgrp>
         <bibl id="B1">
            <title>
               <p>Developments in the clinical understanding of rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Smolen</snm>
                  <fnm>JS</fnm>
               </au>
               <au>
                  <snm>Aletaha</snm>
                  <fnm>D</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2009</pubdate>
            <volume>11</volume>
            <fpage>204</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar2535</pubid>
                  <pubid idtype="pmcid">2688215</pubid>
                  <pubid idtype="pmpid" link="fulltext">19232060</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B2">
            <title>
               <p>Cytokines in the pathogenesis of rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>McInnes</snm>
                  <fnm>IB</fnm>
               </au>
               <au>
                  <snm>Schett</snm>
                  <fnm>G</fnm>
               </au>
            </aug>
            <source>Nat Rev Immunol</source>
            <pubdate>2007</pubdate>
            <volume>7</volume>
            <fpage>429</fpage>
            <lpage>442</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/nri2094</pubid>
                  <pubid idtype="pmpid" link="fulltext">17525752</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B3">
            <title>
               <p>Evidence that cytokines play a role in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Brennan</snm>
                  <fnm>FM</fnm>
               </au>
               <au>
                  <snm>McInnes</snm>
                  <fnm>IB</fnm>
               </au>
            </aug>
            <source>J Clin Invest</source>
            <pubdate>2008</pubdate>
            <volume>118</volume>
            <fpage>3537</fpage>
            <lpage>3545</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1172/JCI36389</pubid>
                  <pubid idtype="pmcid">2575731</pubid>
                  <pubid idtype="pmpid" link="fulltext">18982160</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B4">
            <title>
               <p>Anti-TNF alpha therapy of rheumatoid arthritis: what have we learned?</p>
            </title>
            <aug>
               <au>
                  <snm>Feldmann</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Maini</snm>
                  <fnm>RN</fnm>
               </au>
            </aug>
            <source>Annu Rev Immunol</source>
            <pubdate>2001</pubdate>
            <volume>19</volume>
            <fpage>163</fpage>
            <lpage>196</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1146/annurev.immunol.19.1.163</pubid>
                  <pubid idtype="pmpid" link="fulltext">11244034</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B5">
            <title>
               <p>Interleukin 6: from bench to bedside</p>
            </title>
            <aug>
               <au>
                  <snm>Nishimoto</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Kishimoto</snm>
                  <fnm>T</fnm>
               </au>
            </aug>
            <source>Nat Clin Pract Rheumatol</source>
            <pubdate>2006</pubdate>
            <volume>2</volume>
            <fpage>619</fpage>
            <lpage>626</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/ncprheum0338</pubid>
                  <pubid idtype="pmpid" link="fulltext">17075601</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B6">
            <title>
               <p>Garden of therapeutic delights: new targets in rheumatic diseases</p>
            </title>
            <aug>
               <au>
                  <snm>Waldburger</snm>
                  <fnm>JM</fnm>
               </au>
               <au>
                  <snm>Firestein</snm>
                  <fnm>GS</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2009</pubdate>
            <volume>11</volume>
            <fpage>206</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar2556</pubid>
                  <pubid idtype="pmcid">2688217</pubid>
                  <pubid idtype="pmpid" link="fulltext">19232066</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B7">
            <title>
               <p>Specific autoantibodies precede the symptoms of rheumatoid arthritis: a study of serial measurements in blood donors</p>
            </title>
            <aug>
               <au>
                  <snm>Nielen</snm>
                  <fnm>MM</fnm>
               </au>
               <au>
                  <snm>van Schaardenburg</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Reesink</snm>
                  <fnm>HW</fnm>
               </au>
               <au>
                  <snm>Stadt</snm>
                  <mnm>van de</mnm>
                  <fnm>RJ</fnm>
               </au>
               <au>
                  <snm>Horst-Bruinsma</snm>
                  <mnm>van der</mnm>
                  <fnm>IE</fnm>
               </au>
               <au>
                  <snm>de Koning</snm>
                  <fnm>MH</fnm>
               </au>
               <au>
                  <snm>Habibuw</snm>
                  <fnm>MR</fnm>
               </au>
               <au>
                  <snm>Vandenbroucke</snm>
                  <fnm>JP</fnm>
               </au>
               <au>
                  <snm>Dijkmans</snm>
                  <fnm>BA</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2004</pubdate>
            <volume>50</volume>
            <fpage>380</fpage>
            <lpage>386</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.20018</pubid>
                  <pubid idtype="pmpid" link="fulltext">14872479</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B8">
            <title>
               <p>Antibodies against cyclic citrullinated peptide and IgA rheumatoid factor predict the development of rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Rantapaa-Dahlqvist</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>de Jong</snm>
                  <fnm>BA</fnm>
               </au>
               <au>
                  <snm>Berglin</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Hallmans</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>Wadell</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>Stenlund</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Sundin</snm>
                  <fnm>U</fnm>
               </au>
               <au>
                  <snm>van Venrooij</snm>
                  <fnm>WJ</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2003</pubdate>
            <volume>48</volume>
            <fpage>2741</fpage>
            <lpage>2749</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.11223</pubid>
                  <pubid idtype="pmpid" link="fulltext">14558078</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B9">
            <title>
               <p>Vasculitis in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Turesson</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Matteson</snm>
                  <fnm>EL</fnm>
               </au>
            </aug>
            <source>Curr Opin Rheumatol</source>
            <pubdate>2009</pubdate>
            <volume>21</volume>
            <fpage>35</fpage>
            <lpage>40</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1097/BOR.0b013e32831c5303</pubid>
                  <pubid idtype="pmpid" link="fulltext">19077716</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B10">
            <title>
               <p>Twin concordance rates for rheumatoid arthritis: results from a nationwide study</p>
            </title>
            <aug>
               <au>
                  <snm>Silman</snm>
                  <fnm>AJ</fnm>
               </au>
               <au>
                  <snm>MacGregor</snm>
                  <fnm>AJ</fnm>
               </au>
               <au>
                  <snm>Thomson</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Holligan</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Carthy</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Farhan</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Ollier</snm>
                  <fnm>WE</fnm>
               </au>
            </aug>
            <source>Br J Rheumatol</source>
            <pubdate>1993</pubdate>
            <volume>32</volume>
            <fpage>903</fpage>
            <lpage>907</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1093/rheumatology/32.10.903</pubid>
                  <pubid idtype="pmpid" link="fulltext">8402000</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B11">
            <title>
               <p>The genetics revolution and the assault on rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Seldin</snm>
                  <fnm>MF</fnm>
               </au>
               <au>
                  <snm>Amos</snm>
                  <fnm>CI</fnm>
               </au>
               <au>
                  <snm>Ward</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>1999</pubdate>
            <volume>42</volume>
            <fpage>1071</fpage>
            <lpage>1079</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/1529-0131(199906)42:6&lt;1071::AID-ANR1&gt;3.0.CO;2-8</pubid>
                  <pubid idtype="pmpid" link="fulltext">10366098</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B12">
            <title>
               <p>Genetic variants that predict response to anti-tumor necrosis factor therapy in rheumatoid arthritis: current challenges and future directions</p>
            </title>
            <aug>
               <au>
                  <snm>Plenge</snm>
                  <fnm>RM</fnm>
               </au>
               <au>
                  <snm>Criswell</snm>
                  <fnm>LA</fnm>
               </au>
            </aug>
            <source>Curr Opin Rheumatol</source>
            <pubdate>2008</pubdate>
            <volume>20</volume>
            <fpage>145</fpage>
            <lpage>152</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1097/BOR.0b013e3282f5135b</pubid>
                  <pubid idtype="pmpid" link="fulltext">18349743</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B13">
            <title>
               <p>Defining the role of the MHC in autoimmunity: a review and pooled analysis</p>
            </title>
            <aug>
               <au>
                  <snm>Fernando</snm>
                  <fnm>MM</fnm>
               </au>
               <au>
                  <snm>Stevens</snm>
                  <fnm>CR</fnm>
               </au>
               <au>
                  <snm>Walsh</snm>
                  <fnm>EC</fnm>
               </au>
               <au>
                  <snm>De Jager</snm>
                  <fnm>PL</fnm>
               </au>
               <au>
                  <snm>Goyette</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Plenge</snm>
                  <fnm>RM</fnm>
               </au>
               <au>
                  <snm>Vyse</snm>
                  <fnm>TJ</fnm>
               </au>
               <au>
                  <snm>Rioux</snm>
                  <fnm>JD</fnm>
               </au>
            </aug>
            <source>PLoS Genet</source>
            <pubdate>2008</pubdate>
            <volume>4</volume>
            <fpage>e1000024</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1371/journal.pgen.1000024</pubid>
                  <pubid idtype="pmcid">2291482</pubid>
                  <pubid idtype="pmpid" link="fulltext">18437207</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B14">
            <title>
               <p>Mechanisms of disease: genetics of rheumatoid arthritis: ethnic differences in disease-associated genes</p>
            </title>
            <aug>
               <au>
                  <snm>Yamada</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Yamamoto</snm>
                  <fnm>K</fnm>
               </au>
            </aug>
            <source>Nat Clin Pract Rheumatol</source>
            <pubdate>2007</pubdate>
            <volume>3</volume>
            <fpage>644</fpage>
            <lpage>650</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/ncprheum0592</pubid>
                  <pubid idtype="pmpid" link="fulltext">17968335</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B15">
            <title>
               <p>The shared epitope hypothesis. An approach to understanding the molecular genetics of susceptibility to rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
               <au>
                  <snm>Silver</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Winchester</snm>
                  <fnm>RJ</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>1987</pubdate>
            <volume>30</volume>
            <fpage>1205</fpage>
            <lpage>1213</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.1780301102</pubid>
                  <pubid idtype="pmpid" link="fulltext">2446635</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B16">
            <title>
               <p>Refining the complex rheumatoid arthritis phenotype based on specificity of the HLA-DRB1 shared epitope for antibodies to citrullinated proteins</p>
            </title>
            <aug>
               <au>
                  <snm>Huizinga</snm>
                  <fnm>TW</fnm>
               </au>
               <au>
                  <snm>Amos</snm>
                  <fnm>CI</fnm>
               </au>
               <au>
                  <snm>Helm-van Mil</snm>
                  <mnm>van der</mnm>
                  <fnm>AH</fnm>
               </au>
               <au>
                  <snm>Chen</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>van Gaalen</snm>
                  <fnm>FA</fnm>
               </au>
               <au>
                  <snm>Jawaheer</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Schreuder</snm>
                  <fnm>GM</fnm>
               </au>
               <au>
                  <snm>Wener</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Breedveld</snm>
                  <fnm>FC</fnm>
               </au>
               <au>
                  <snm>Ahmad</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Lum</snm>
                  <fnm>RF</fnm>
               </au>
               <au>
                  <snm>de Vries</snm>
                  <fnm>RR</fnm>
               </au>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
               <au>
                  <snm>Toes</snm>
                  <fnm>RE</fnm>
               </au>
               <au>
                  <snm>Criswell</snm>
                  <fnm>LA</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2005</pubdate>
            <volume>52</volume>
            <fpage>3433</fpage>
            <lpage>3438</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.21385</pubid>
                  <pubid idtype="pmpid" link="fulltext">16255021</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B17">
            <title>
               <p>The HLA-DRB1 shared epitope alleles are primarily a risk factor for anti-cyclic citrullinated peptide antibodies and are not an independent risk factor for development of rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Helm-van Mil</snm>
                  <mnm>van der</mnm>
                  <fnm>AH</fnm>
               </au>
               <au>
                  <snm>Verpoort</snm>
                  <fnm>KN</fnm>
               </au>
               <au>
                  <snm>Breedveld</snm>
                  <fnm>FC</fnm>
               </au>
               <au>
                  <snm>Huizinga</snm>
                  <fnm>TW</fnm>
               </au>
               <au>
                  <snm>Toes</snm>
                  <fnm>RE</fnm>
               </au>
               <au>
                  <snm>de Vries</snm>
                  <fnm>RR</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2006</pubdate>
            <volume>54</volume>
            <fpage>1117</fpage>
            <lpage>1121</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.21739</pubid>
                  <pubid idtype="pmpid" link="fulltext">16572446</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B18">
            <title>
               <p>Characterizing the quantitative genetic contribution to rheumatoid arthritis using data from twins</p>
            </title>
            <aug>
               <au>
                  <snm>MacGregor</snm>
                  <fnm>AJ</fnm>
               </au>
               <au>
                  <snm>Snieder</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Rigby</snm>
                  <fnm>AS</fnm>
               </au>
               <au>
                  <snm>Koskenvuo</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Kaprio</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Aho</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Silman</snm>
                  <fnm>AJ</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2000</pubdate>
            <volume>43</volume>
            <fpage>30</fpage>
            <lpage>37</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/1529-0131(200001)43:1&lt;30::AID-ANR5&gt;3.0.CO;2-B</pubid>
                  <pubid idtype="pmpid" link="fulltext">10643697</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B19">
            <title>
               <p>A missense single-nucleotide polymorphism in a gene encoding a protein tyrosine phosphatase (PTPN22) is associated with rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Begovich</snm>
                  <fnm>AB</fnm>
               </au>
               <au>
                  <snm>Carlton</snm>
                  <fnm>VE</fnm>
               </au>
               <au>
                  <snm>Honigberg</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Schrodi</snm>
                  <fnm>SJ</fnm>
               </au>
               <au>
                  <snm>Chokkalingam</snm>
                  <fnm>AP</fnm>
               </au>
               <au>
                  <snm>Alexander</snm>
                  <fnm>HC</fnm>
               </au>
               <au>
                  <snm>Ardlie</snm>
                  <fnm>KG</fnm>
               </au>
               <au>
                  <snm>Huang</snm>
                  <fnm>Q</fnm>
               </au>
               <au>
                  <snm>Smith</snm>
                  <fnm>AM</fnm>
               </au>
               <au>
                  <snm>Spoerke</snm>
                  <fnm>JM</fnm>
               </au>
               <au>
                  <snm>Conn</snm>
                  <fnm>MT</fnm>
               </au>
               <au>
                  <snm>Chang</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Chang</snm>
                  <fnm>SY</fnm>
               </au>
               <au>
                  <snm>Saiki</snm>
                  <fnm>RK</fnm>
               </au>
               <au>
                  <snm>Catanese</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Leong</snm>
                  <fnm>DU</fnm>
               </au>
               <au>
                  <snm>Garcia</snm>
                  <fnm>VE</fnm>
               </au>
               <au>
                  <snm>McAllister</snm>
                  <fnm>LB</fnm>
               </au>
               <au>
                  <snm>Jeffery</snm>
                  <fnm>DA</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>AT</fnm>
               </au>
               <au>
                  <snm>Batliwalla</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Remmers</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Criswell</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Seldin</snm>
                  <fnm>MF</fnm>
               </au>
               <au>
                  <snm>Kastner</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Amos</snm>
                  <fnm>CI</fnm>
               </au>
               <au>
                  <snm>Sninsky</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
            </aug>
            <source>Am J Hum Genet</source>
            <pubdate>2004</pubdate>
            <volume>75</volume>
            <fpage>330</fpage>
            <lpage>337</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1086/422827</pubid>
                  <pubid idtype="pmcid">1216068</pubid>
                  <pubid idtype="pmpid" link="fulltext">15208781</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B20">
            <title>
               <p>Association of the lymphoid tyrosine phosphatase R620W variant with rheumatoid arthritis, but not Crohn's disease, in Canadian populations</p>
            </title>
            <aug>
               <au>
                  <snm>van Oene</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Wintle</snm>
                  <fnm>RF</fnm>
               </au>
               <au>
                  <snm>Liu</snm>
                  <fnm>X</fnm>
               </au>
               <au>
                  <snm>Yazdanpanah</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Gu</snm>
                  <fnm>X</fnm>
               </au>
               <au>
                  <snm>Newman</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Kwan</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Johnson</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Owen</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Greer</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Mosher</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Maksymowych</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Keystone</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Rubin</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Amos</snm>
                  <fnm>CI</fnm>
               </au>
               <au>
                  <snm>Siminovitch</snm>
                  <fnm>KA</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2005</pubdate>
            <volume>52</volume>
            <fpage>1993</fpage>
            <lpage>1998</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.21123</pubid>
                  <pubid idtype="pmpid" link="fulltext">15986374</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B21">
            <title>
               <p>Association of the PTPN22 C1858T single-nucleotide polymorphism with rheumatoid arthritis phenotypes in an inception cohort</p>
            </title>
            <aug>
               <au>
                  <snm>Wesoly</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Helm-van Mil</snm>
                  <mnm>van der</mnm>
                  <fnm>AH</fnm>
               </au>
               <au>
                  <snm>Toes</snm>
                  <fnm>RE</fnm>
               </au>
               <au>
                  <snm>Chokkalingam</snm>
                  <fnm>AP</fnm>
               </au>
               <au>
                  <snm>Carlton</snm>
                  <fnm>VE</fnm>
               </au>
               <au>
                  <snm>Begovich</snm>
                  <fnm>AB</fnm>
               </au>
               <au>
                  <snm>Huizinga</snm>
                  <fnm>TW</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2005</pubdate>
            <volume>52</volume>
            <fpage>2948</fpage>
            <lpage>2950</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.21294</pubid>
                  <pubid idtype="pmpid" link="fulltext">16145680</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B22">
            <title>
               <p>Pathways to gene identification in rheumatoid arthritis: PTPN22 and beyond</p>
            </title>
            <aug>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
            </aug>
            <source>Immunol Rev</source>
            <pubdate>2005</pubdate>
            <volume>204</volume>
            <fpage>74</fpage>
            <lpage>86</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1111/j.0105-2896.2005.00243.x</pubid>
                  <pubid idtype="pmpid" link="fulltext">15790351</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B23">
            <title>
               <p>Haplotype analysis revealed no association between the PTPN22 gene and RA in a Japanese population</p>
            </title>
            <aug>
               <au>
                  <snm>Ikari</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Momohara</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Inoue</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Tomatsu</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Hara</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Yamanaka</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Kamatani</snm>
                  <fnm>N</fnm>
               </au>
            </aug>
            <source>Rheumatology (Oxford)</source>
            <pubdate>2006</pubdate>
            <volume>45</volume>
            <fpage>1345</fpage>
            <lpage>1348</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1093/rheumatology/kel169</pubid>
                  <pubid idtype="pmpid" link="fulltext">16690758</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B24">
            <title>
               <p>Ethnic differences in allele frequency of autoimmune-disease-associated SNPs</p>
            </title>
            <aug>
               <au>
                  <snm>Mori</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Yamada</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Kobayashi</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Kawaida</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Yamamoto</snm>
                  <fnm>K</fnm>
               </au>
            </aug>
            <source>J Hum Genet</source>
            <pubdate>2005</pubdate>
            <volume>50</volume>
            <fpage>264</fpage>
            <lpage>266</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1007/s10038-005-0246-8</pubid>
                  <pubid idtype="pmpid" link="fulltext">15883854</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B25">
            <title>
               <p>Identification of substrates of human protein-tyrosine phosphatase PTPN22</p>
            </title>
            <aug>
               <au>
                  <snm>Wu</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Katrekar</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Honigberg</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Smith</snm>
                  <fnm>AM</fnm>
               </au>
               <au>
                  <snm>Conn</snm>
                  <fnm>MT</fnm>
               </au>
               <au>
                  <snm>Tang</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Jeffery</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Mortara</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Sampang</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Williams</snm>
                  <fnm>SR</fnm>
               </au>
               <au>
                  <snm>Buggy</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Clark</snm>
                  <fnm>JM</fnm>
               </au>
            </aug>
            <source>J Biol Chem</source>
            <pubdate>2006</pubdate>
            <volume>281</volume>
            <fpage>11002</fpage>
            <lpage>11010</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1074/jbc.M600498200</pubid>
                  <pubid idtype="pmpid" link="fulltext">16461343</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B26">
            <title>
               <p>Cooperative inhibition of T-cell antigen receptor signaling by a complex between a kinase and a phosphatase</p>
            </title>
            <aug>
               <au>
                  <snm>Cloutier</snm>
                  <fnm>JF</fnm>
               </au>
               <au>
                  <snm>Veillette</snm>
                  <fnm>A</fnm>
               </au>
            </aug>
            <source>J Exp Med</source>
            <pubdate>1999</pubdate>
            <volume>189</volume>
            <fpage>111</fpage>
            <lpage>121</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1084/jem.189.1.111</pubid>
                  <pubid idtype="pmcid">1887684</pubid>
                  <pubid idtype="pmpid" link="fulltext">9874568</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B27">
            <title>
               <p>Autoimmune-associated lymphoid tyrosine phosphatase is a gain-of-function variant</p>
            </title>
            <aug>
               <au>
                  <snm>Vang</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Congia</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Macis</snm>
                  <fnm>MD</fnm>
               </au>
               <au>
                  <snm>Musumeci</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Orr&#250;</snm>
                  <fnm>V</fnm>
               </au>
               <au>
                  <snm>Zavattari</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Nika</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Tautz</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Task&#233;n</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Cucca</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Mustelin</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Bottini</snm>
                  <fnm>N</fnm>
               </au>
            </aug>
            <source>Nat Genet</source>
            <pubdate>2005</pubdate>
            <volume>37</volume>
            <fpage>1317</fpage>
            <lpage>1319</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/ng1673</pubid>
                  <pubid idtype="pmpid" link="fulltext">16273109</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B28">
            <title>
               <p>Role of PTPN22 in type 1 diabetes and other autoimmune diseases</p>
            </title>
            <aug>
               <au>
                  <snm>Bottini</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Vang</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Cucca</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Mustelin</snm>
                  <fnm>T</fnm>
               </au>
            </aug>
            <source>Semin Immunol</source>
            <pubdate>2006</pubdate>
            <volume>18</volume>
            <fpage>207</fpage>
            <lpage>213</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1016/j.smim.2006.03.008</pubid>
                  <pubid idtype="pmpid" link="fulltext">16697661</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B29">
            <title>
               <p>Functional haplotypes of PADI4, encoding citrullinating enzyme peptidylarginine deiminase 4, are associated with rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Suzuki</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Yamada</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Chang</snm>
                  <fnm>X</fnm>
               </au>
               <au>
                  <snm>Tokuhiro</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Sawada</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Suzuki</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Nagasaki</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Nakayama-Hamada</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Kawaida</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Ono</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Ohtsuki</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Furukawa</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Yoshino</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Yukioka</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Tohma</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Matsubara</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Wakitani</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Teshima</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Nishioka</snm>
                  <fnm>Y</fnm>
               </au>
               <au>
                  <snm>Sekine</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Iida</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Takahashi</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Tsunoda</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Nakamura</snm>
                  <fnm>Y</fnm>
               </au>
               <au>
                  <snm>Yamamoto</snm>
                  <fnm>K</fnm>
               </au>
            </aug>
            <source>Nat Genet</source>
            <pubdate>2003</pubdate>
            <volume>34</volume>
            <fpage>395</fpage>
            <lpage>402</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/ng1206</pubid>
                  <pubid idtype="pmpid" link="fulltext">12833157</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B30">
            <title>
               <p>Association between PADI4 and rheumatoid arthritis: a meta-analysis</p>
            </title>
            <aug>
               <au>
                  <snm>Iwamoto</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Ikari</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Nakamura</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Kuwahara</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Toyama</snm>
                  <fnm>Y</fnm>
               </au>
               <au>
                  <snm>Tomatsu</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Momohara</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Kamatani</snm>
                  <fnm>N</fnm>
               </au>
            </aug>
            <source>Rheumatology (Oxford)</source>
            <pubdate>2006</pubdate>
            <volume>45</volume>
            <fpage>804</fpage>
            <lpage>807</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1093/rheumatology/kel023</pubid>
                  <pubid idtype="pmpid" link="fulltext">16449362</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B31">
            <title>
               <p>A functional haplotype of the PADI4 gene associated with increased rheumatoid arthritis susceptibility in Koreans</p>
            </title>
            <aug>
               <au>
                  <snm>Kang</snm>
                  <fnm>CP</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>HS</fnm>
               </au>
               <au>
                  <snm>Ju</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Cho</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Kang</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Bae</snm>
                  <fnm>SC</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2006</pubdate>
            <volume>54</volume>
            <fpage>90</fpage>
            <lpage>96</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.21536</pubid>
                  <pubid idtype="pmpid" link="fulltext">16385500</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B32">
            <title>
               <p>A functional haplotype of the PADI4 gene associated with rheumatoid arthritis in a Japanese population is not associated in a United Kingdom population</p>
            </title>
            <aug>
               <au>
                  <snm>Barton</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Bowes</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Eyre</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Spreckley</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Hinks</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>John</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Worthington</snm>
                  <fnm>J</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2004</pubdate>
            <volume>50</volume>
            <fpage>1117</fpage>
            <lpage>1121</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.20169</pubid>
                  <pubid idtype="pmpid" link="fulltext">15077293</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B33">
            <title>
               <p>A family based study shows no association between rheumatoid arthritis and the PADI4 gene in a white French population</p>
            </title>
            <aug>
               <au>
                  <snm>Caponi</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Petit-Teixeira</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Sebbag</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Bongiorni</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Moscato</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Pratesi</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Pierlot</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Osorio</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Chapuy-Regaud</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Guerrin</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Cornelis</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Serre</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>Migliorini</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <cnm>ECRAF</cnm>
               </au>
            </aug>
            <source>Ann Rheum Dis</source>
            <pubdate>2005</pubdate>
            <volume>64</volume>
            <fpage>587</fpage>
            <lpage>593</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1136/ard.2004.026831</pubid>
                  <pubid idtype="pmcid">1755438</pubid>
                  <pubid idtype="pmpid" link="fulltext">15485997</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B34">
            <title>
               <p>PADI4 polymorphisms are not associated with rheumatoid arthritis in the Spanish population</p>
            </title>
            <aug>
               <au>
                  <snm>Martinez</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Valdivia</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Pascual-Salcedo</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Lamas</snm>
                  <fnm>JR</fnm>
               </au>
               <au>
                  <snm>Fernandez-Arquero</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Balsa</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Fernandez-Gutierrez</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>de la Concha</snm>
                  <fnm>EG</fnm>
               </au>
               <au>
                  <snm>Urcelay</snm>
                  <fnm>E</fnm>
               </au>
            </aug>
            <source>Rheumatology (Oxford)</source>
            <pubdate>2005</pubdate>
            <volume>44</volume>
            <fpage>1263</fpage>
            <lpage>1266</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1093/rheumatology/kei008</pubid>
                  <pubid idtype="pmpid" link="fulltext">15998632</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B35">
            <title>
               <p>Replication of putative candidate-gene associations with rheumatoid arthritis in &gt;4,000 samples from North America and Sweden: association of susceptibility with PTPN22, CTLA4, and PADI4</p>
            </title>
            <aug>
               <au>
                  <snm>Plenge</snm>
                  <fnm>RM</fnm>
               </au>
               <au>
                  <snm>Padyukov</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Remmers</snm>
                  <fnm>EF</fnm>
               </au>
               <au>
                  <snm>Purcell</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>AT</fnm>
               </au>
               <au>
                  <snm>Karlson</snm>
                  <fnm>EW</fnm>
               </au>
               <au>
                  <snm>Wolfe</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Kastner</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Alfredsson</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Altshuler</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
               <au>
                  <snm>Klareskog</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Rioux</snm>
                  <fnm>JD</fnm>
               </au>
            </aug>
            <source>Am J Hum Genet</source>
            <pubdate>2005</pubdate>
            <volume>77</volume>
            <fpage>1044</fpage>
            <lpage>1060</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1086/498651</pubid>
                  <pubid idtype="pmcid">1285162</pubid>
                  <pubid idtype="pmpid" link="fulltext">16380915</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B36">
            <title>
               <p>STAT4 and the risk of rheumatoid arthritis and systemic lupus erythematosus</p>
            </title>
            <aug>
               <au>
                  <snm>Remmers</snm>
                  <fnm>EF</fnm>
               </au>
               <au>
                  <snm>Plenge</snm>
                  <fnm>RM</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>AT</fnm>
               </au>
               <au>
                  <snm>Graham</snm>
                  <fnm>RR</fnm>
               </au>
               <au>
                  <snm>Hom</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>Behrens</snm>
                  <fnm>TW</fnm>
               </au>
               <au>
                  <snm>de Bakker</snm>
                  <fnm>PI</fnm>
               </au>
               <au>
                  <snm>Le</snm>
                  <fnm>JM</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>HS</fnm>
               </au>
               <au>
                  <snm>Batliwalla</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Li</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Masters</snm>
                  <fnm>SL</fnm>
               </au>
               <au>
                  <snm>Booty</snm>
                  <fnm>MG</fnm>
               </au>
               <au>
                  <snm>Carulli</snm>
                  <fnm>JP</fnm>
               </au>
               <au>
                  <snm>Padyukov</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Alfredsson</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Klareskog</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Chen</snm>
                  <fnm>WV</fnm>
               </au>
               <au>
                  <snm>Amos</snm>
                  <fnm>CI</fnm>
               </au>
               <au>
                  <snm>Criswell</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Seldin</snm>
                  <fnm>MF</fnm>
               </au>
               <au>
                  <snm>Kastner</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
            </aug>
            <source>N Engl J Med</source>
            <pubdate>2007</pubdate>
            <volume>357</volume>
            <fpage>977</fpage>
            <lpage>986</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1056/NEJMoa073003</pubid>
                  <pubid idtype="pmcid">2630215</pubid>
                  <pubid idtype="pmpid" link="fulltext">17804842</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B37">
            <title>
               <p>Association of STAT4 with rheumatoid arthritis in the Korean population</p>
            </title>
            <aug>
               <au>
                  <snm>Lee</snm>
                  <fnm>HS</fnm>
               </au>
               <au>
                  <snm>Remmers</snm>
                  <fnm>EF</fnm>
               </au>
               <au>
                  <snm>Le</snm>
                  <fnm>JM</fnm>
               </au>
               <au>
                  <snm>Kastner</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Bae</snm>
                  <fnm>SC</fnm>
               </au>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
            </aug>
            <source>Mol Med</source>
            <pubdate>2007</pubdate>
            <volume>13</volume>
            <fpage>455</fpage>
            <lpage>460</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmcid">2014726</pubid>
                  <pubid idtype="pmpid" link="fulltext">17932559</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B38">
            <title>
               <p>Rheumatoid arthritis association at 6q23</p>
            </title>
            <aug>
               <au>
                  <snm>Thomson</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Barton</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Ke</snm>
                  <fnm>X</fnm>
               </au>
               <au>
                  <snm>Eyre</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Hinks</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Bowes</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Donn</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Symmons</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Hider</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Bruce</snm>
                  <fnm>IN</fnm>
               </au>
               <au>
                  <cnm>Wellcome Trust Case Control Consortium</cnm>
               </au>
               <au>
                  <snm>Wilson</snm>
                  <fnm>AG</fnm>
               </au>
               <au>
                  <snm>Marinou</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Morgan</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Emery</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <cnm>YEAR Consortium</cnm>
               </au>
               <au>
                  <snm>Carter</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Steer</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Hocking</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Reid</snm>
                  <fnm>DM</fnm>
               </au>
               <au>
                  <snm>Wordsworth</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Harrison</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Strachan</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Worthington</snm>
                  <fnm>J</fnm>
               </au>
            </aug>
            <source>Nat Genet</source>
            <pubdate>2007</pubdate>
            <volume>39</volume>
            <fpage>1431</fpage>
            <lpage>1433</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/ng.2007.32</pubid>
                  <pubid idtype="pmcid">2674282</pubid>
                  <pubid idtype="pmpid" link="fulltext">17982455</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B39">
            <title>
               <p>Two independent alleles at 6q23 associated with risk of rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Plenge</snm>
                  <fnm>RM</fnm>
               </au>
               <au>
                  <snm>Cotsapas</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Davies</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Price</snm>
                  <fnm>AL</fnm>
               </au>
               <au>
                  <snm>de Bakker</snm>
                  <fnm>PI</fnm>
               </au>
               <au>
                  <snm>Maller</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Pe'er</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Burtt</snm>
                  <fnm>NP</fnm>
               </au>
               <au>
                  <snm>Blumenstiel</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>DeFelice</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Parkin</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Barry</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Winslow</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Healy</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Graham</snm>
                  <fnm>RR</fnm>
               </au>
               <au>
                  <snm>Neale</snm>
                  <fnm>BM</fnm>
               </au>
               <au>
                  <snm>Izmailova</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Roubenoff</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Parker</snm>
                  <fnm>AN</fnm>
               </au>
               <au>
                  <snm>Glass</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Karlson</snm>
                  <fnm>EW</fnm>
               </au>
               <au>
                  <snm>Maher</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Hafler</snm>
                  <fnm>DA</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>DM</fnm>
               </au>
               <au>
                  <snm>Seldin</snm>
                  <fnm>MF</fnm>
               </au>
               <au>
                  <snm>Remmers</snm>
                  <fnm>EF</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>AT</fnm>
               </au>
               <au>
                  <snm>Padyukov</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Alfredsson</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Coblyn</snm>
                  <fnm>J</fnm>
               </au>
               <etal/>
            </aug>
            <source>Nat Genet</source>
            <pubdate>2007</pubdate>
            <volume>39</volume>
            <fpage>1477</fpage>
            <lpage>1482</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/ng.2007.27</pubid>
                  <pubid idtype="pmcid">2652744</pubid>
                  <pubid idtype="pmpid" link="fulltext">17982456</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B40">
            <title>
               <p>The ubiquitin-modifying enzyme A20 is required for termination of Toll-like receptor responses</p>
            </title>
            <aug>
               <au>
                  <snm>Boone</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Turer</snm>
                  <fnm>EE</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>EG</fnm>
               </au>
               <au>
                  <snm>Ahmad</snm>
                  <fnm>RC</fnm>
               </au>
               <au>
                  <snm>Wheeler</snm>
                  <fnm>MT</fnm>
               </au>
               <au>
                  <snm>Tsui</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Hurley</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Chien</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Chai</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Hitotsumatsu</snm>
                  <fnm>O</fnm>
               </au>
               <au>
                  <snm>McNally</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Pickart</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Ma</snm>
                  <fnm>A</fnm>
               </au>
            </aug>
            <source>Nat Immunol</source>
            <pubdate>2004</pubdate>
            <volume>5</volume>
            <fpage>1052</fpage>
            <lpage>1060</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/ni1110</pubid>
                  <pubid idtype="pmpid" link="fulltext">15334086</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B41">
            <title>
               <p>De-ubiquitination and ubiquitin ligase domains of A20 downregulate NF-kappaB signalling</p>
            </title>
            <aug>
               <au>
                  <snm>Wertz</snm>
                  <fnm>IE</fnm>
               </au>
               <au>
                  <snm>O'Rourke</snm>
                  <fnm>KM</fnm>
               </au>
               <au>
                  <snm>Zhou</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Eby</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Aravind</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Seshagiri</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Wu</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Wiesmann</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Baker</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Boone</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Ma</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Koonin</snm>
                  <fnm>EV</fnm>
               </au>
               <au>
                  <snm>Dixit</snm>
                  <fnm>VM</fnm>
               </au>
            </aug>
            <source>Nature</source>
            <pubdate>2004</pubdate>
            <volume>430</volume>
            <fpage>694</fpage>
            <lpage>699</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/nature02794</pubid>
                  <pubid idtype="pmpid" link="fulltext">15258597</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B42">
            <title>
               <p>Failure to regulate TNF-induced NF-kappaB and cell death responses in A20-deficient mice</p>
            </title>
            <aug>
               <au>
                  <snm>Lee</snm>
                  <fnm>EG</fnm>
               </au>
               <au>
                  <snm>Boone</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Chai</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Libby</snm>
                  <fnm>SL</fnm>
               </au>
               <au>
                  <snm>Chien</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Lodolce</snm>
                  <fnm>JP</fnm>
               </au>
               <au>
                  <snm>Ma</snm>
                  <fnm>A</fnm>
               </au>
            </aug>
            <source>Science</source>
            <pubdate>2000</pubdate>
            <volume>289</volume>
            <fpage>2350</fpage>
            <lpage>2354</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1126/science.289.5488.2350</pubid>
                  <pubid idtype="pmpid" link="fulltext">11009421</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B43">
            <title>
               <p>A candidate gene approach identifies the TRAF1/C5 region as a risk factor for rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Kurreeman</snm>
                  <fnm>FA</fnm>
               </au>
               <au>
                  <snm>Padyukov</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Marques</snm>
                  <fnm>RB</fnm>
               </au>
               <au>
                  <snm>Schrodi</snm>
                  <fnm>SJ</fnm>
               </au>
               <au>
                  <snm>Seddighzadeh</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Stoeken-Rijsbergen</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>Helm-van Mil</snm>
                  <mnm>van der</mnm>
                  <fnm>AH</fnm>
               </au>
               <au>
                  <snm>Allaart</snm>
                  <fnm>CF</fnm>
               </au>
               <au>
                  <snm>Verduyn</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Houwing-Duistermaat</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Alfredsson</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Begovich</snm>
                  <fnm>AB</fnm>
               </au>
               <au>
                  <snm>Klareskog</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Huizinga</snm>
                  <fnm>TW</fnm>
               </au>
               <au>
                  <snm>Toes</snm>
                  <fnm>RE</fnm>
               </au>
            </aug>
            <source>PLoS Med</source>
            <pubdate>2007</pubdate>
            <volume>4</volume>
            <fpage>e278</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1371/journal.pmed.0040278</pubid>
                  <pubid idtype="pmcid">1976626</pubid>
                  <pubid idtype="pmpid" link="fulltext">17880261</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B44">
            <title>
               <p>TRAF1-C5 as a risk locus for rheumatoid arthritis: a genomewide study</p>
            </title>
            <aug>
               <au>
                  <snm>Plenge</snm>
                  <fnm>RM</fnm>
               </au>
               <au>
                  <snm>Seielstad</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Padyukov</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>AT</fnm>
               </au>
               <au>
                  <snm>Remmers</snm>
                  <fnm>EF</fnm>
               </au>
               <au>
                  <snm>Ding</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Liew</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Khalili</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Chandrasekaran</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Davies</snm>
                  <fnm>LR</fnm>
               </au>
               <au>
                  <snm>Li</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Tan</snm>
                  <fnm>AK</fnm>
               </au>
               <au>
                  <snm>Bonnard</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Ong</snm>
                  <fnm>RT</fnm>
               </au>
               <au>
                  <snm>Thalamuthu</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Pettersson</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Liu</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Tian</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Chen</snm>
                  <fnm>WV</fnm>
               </au>
               <au>
                  <snm>Carulli</snm>
                  <fnm>JP</fnm>
               </au>
               <au>
                  <snm>Beckman</snm>
                  <fnm>EM</fnm>
               </au>
               <au>
                  <snm>Altshuler</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Alfredsson</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Criswell</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Amos</snm>
                  <fnm>CI</fnm>
               </au>
               <au>
                  <snm>Seldin</snm>
                  <fnm>MF</fnm>
               </au>
               <au>
                  <snm>Kastner</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Klareskog</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
            </aug>
            <source>N Engl J Med</source>
            <pubdate>2007</pubdate>
            <volume>357</volume>
            <fpage>1199</fpage>
            <lpage>1209</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1056/NEJMoa073491</pubid>
                  <pubid idtype="pmcid">2636867</pubid>
                  <pubid idtype="pmpid" link="fulltext">17804836</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B45">
            <title>
               <p>A large-scale rheumatoid arthritis genetic study identifies association at chromosome 9q33.2</p>
            </title>
            <aug>
               <au>
                  <snm>Chang</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Rowland</snm>
                  <fnm>CM</fnm>
               </au>
               <au>
                  <snm>Garcia</snm>
                  <fnm>VE</fnm>
               </au>
               <au>
                  <snm>Schrodi</snm>
                  <fnm>SJ</fnm>
               </au>
               <au>
                  <snm>Catanese</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Helm-van Mil</snm>
                  <mnm>van der</mnm>
                  <fnm>AH</fnm>
               </au>
               <au>
                  <snm>Ardlie</snm>
                  <fnm>KG</fnm>
               </au>
               <au>
                  <snm>Amos</snm>
                  <fnm>CI</fnm>
               </au>
               <au>
                  <snm>Criswell</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Kastner</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
               <au>
                  <snm>Kurreeman</snm>
                  <fnm>FA</fnm>
               </au>
               <au>
                  <snm>Toes</snm>
                  <fnm>RE</fnm>
               </au>
               <au>
                  <snm>Huizinga</snm>
                  <fnm>TW</fnm>
               </au>
               <au>
                  <snm>Seldin</snm>
                  <fnm>MF</fnm>
               </au>
               <au>
                  <snm>Begovich</snm>
                  <fnm>AB</fnm>
               </au>
            </aug>
            <source>PLoS Genet</source>
            <pubdate>2008</pubdate>
            <volume>4</volume>
            <fpage>e1000107</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1371/journal.pgen.1000107</pubid>
                  <pubid idtype="pmcid">2481282</pubid>
                  <pubid idtype="pmpid" link="fulltext">18648537</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B46">
            <title>
               <p>Common variants at CD40 and other loci confer risk of rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Raychaudhuri</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Remmers</snm>
                  <fnm>EF</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>AT</fnm>
               </au>
               <au>
                  <snm>Hackett</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Guiducci</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Burtt</snm>
                  <fnm>NP</fnm>
               </au>
               <au>
                  <snm>Gianniny</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Korman</snm>
                  <fnm>BD</fnm>
               </au>
               <au>
                  <snm>Padyukov</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Kurreeman</snm>
                  <fnm>FA</fnm>
               </au>
               <au>
                  <snm>Chang</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Catanese</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Ding</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Wong</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Helm-van Mil</snm>
                  <mnm>van der</mnm>
                  <fnm>AH</fnm>
               </au>
               <au>
                  <snm>Neale</snm>
                  <fnm>BM</fnm>
               </au>
               <au>
                  <snm>Coblyn</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Cui</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Tak</snm>
                  <fnm>PP</fnm>
               </au>
               <au>
                  <snm>Wolbink</snm>
                  <fnm>GJ</fnm>
               </au>
               <au>
                  <snm>Crusius</snm>
                  <fnm>JB</fnm>
               </au>
               <au>
                  <snm>Horst-Bruinsma</snm>
                  <mnm>van der</mnm>
                  <fnm>IE</fnm>
               </au>
               <au>
                  <snm>Criswell</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Amos</snm>
                  <fnm>CI</fnm>
               </au>
               <au>
                  <snm>Seldin</snm>
                  <fnm>MF</fnm>
               </au>
               <au>
                  <snm>Kastner</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Ardlie</snm>
                  <fnm>KG</fnm>
               </au>
               <au>
                  <snm>Alfredsson</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Costenbader</snm>
                  <fnm>KH</fnm>
               </au>
               <au>
                  <snm>Altshuler</snm>
                  <fnm>D</fnm>
               </au>
               <etal/>
            </aug>
            <source>Nat Genet</source>
            <pubdate>2008</pubdate>
            <volume>40</volume>
            <fpage>1216</fpage>
            <lpage>1223</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/ng.233</pubid>
                  <pubid idtype="pmcid">2757650</pubid>
                  <pubid idtype="pmpid" link="fulltext">18794853</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B47">
            <title>
               <p>Type II collagen autoimmunity in animals and provocations leading to arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Holmdahl</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Andersson</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Goldschmidt</snm>
                  <fnm>TJ</fnm>
               </au>
               <au>
                  <snm>Gustafsson</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Jansson</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Mo</snm>
                  <fnm>JA</fnm>
               </au>
            </aug>
            <source>Immunol Rev</source>
            <pubdate>1990</pubdate>
            <volume>118</volume>
            <fpage>193</fpage>
            <lpage>232</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1111/j.1600-065X.1990.tb00817.x</pubid>
                  <pubid idtype="pmpid" link="fulltext">2079326</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B48">
            <title>
               <p>Proteoglycan-induced arthritis: immune regulation, cellular mechanisms, and genetics</p>
            </title>
            <aug>
               <au>
                  <snm>Glant</snm>
                  <fnm>TT</fnm>
               </au>
               <au>
                  <snm>Finnegan</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Mikecz</snm>
                  <fnm>K</fnm>
               </au>
            </aug>
            <source>Crit Rev Immunol</source>
            <pubdate>2003</pubdate>
            <volume>23</volume>
            <fpage>199</fpage>
            <lpage>250</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1615/CritRevImmunol.v23.i3.20</pubid>
                  <pubid idtype="pmpid" link="fulltext">14584879</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B49">
            <title>
               <p>Transgenic mice expressing human tumour necrosis factor: a predictive genetic model of arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Keffer</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Probert</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Cazlaris</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Georgopoulos</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Kaslaris</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Kioussis</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Kollias</snm>
                  <fnm>G</fnm>
               </au>
            </aug>
            <source>EMBO J</source>
            <pubdate>1991</pubdate>
            <volume>10</volume>
            <fpage>4025</fpage>
            <lpage>4031</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmcid">453150</pubid>
                  <pubid idtype="pmpid" link="fulltext">1721867</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B50">
            <title>
               <p>Organ-specific disease provoked by systemic autoimmunity</p>
            </title>
            <aug>
               <au>
                  <snm>Kouskoff</snm>
                  <fnm>V</fnm>
               </au>
               <au>
                  <snm>Korganow</snm>
                  <fnm>AS</fnm>
               </au>
               <au>
                  <snm>Duchatelle</snm>
                  <fnm>V</fnm>
               </au>
               <au>
                  <snm>Degott</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Benoist</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Mathis</snm>
                  <fnm>D</fnm>
               </au>
            </aug>
            <source>Cell</source>
            <pubdate>1996</pubdate>
            <volume>87</volume>
            <fpage>811</fpage>
            <lpage>822</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1016/S0092-8674(00)81989-3</pubid>
                  <pubid idtype="pmpid" link="fulltext">8945509</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B51">
            <title>
               <p>How antibodies to a ubiquitous cytoplasmic enzyme may provoke joint-specific autoimmune disease</p>
            </title>
            <aug>
               <au>
                  <snm>Matsumoto</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Maccioni</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>DM</fnm>
               </au>
               <au>
                  <snm>Maurice</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Simmons</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Brenner</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Mathis</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Benoist</snm>
                  <fnm>C</fnm>
               </au>
            </aug>
            <source>Nat Immunol</source>
            <pubdate>2002</pubdate>
            <volume>3</volume>
            <fpage>360</fpage>
            <lpage>365</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/ni772</pubid>
                  <pubid idtype="pmpid" link="fulltext">11896391</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B52">
            <title>
               <p>Many variable region genes are utilized in the antibody response of BALB/c mice to the influenza virus A/PR/8/34 hemagglutinin</p>
            </title>
            <aug>
               <au>
                  <snm>Caton</snm>
                  <fnm>AJ</fnm>
               </au>
               <au>
                  <snm>Stark</snm>
                  <fnm>SE</fnm>
               </au>
               <au>
                  <snm>Kavaler</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Staudt</snm>
                  <fnm>LM</fnm>
               </au>
               <au>
                  <snm>Schwartz</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Gerhard</snm>
                  <fnm>W</fnm>
               </au>
            </aug>
            <source>J Immunol</source>
            <pubdate>1991</pubdate>
            <volume>147</volume>
            <fpage>1675</fpage>
            <lpage>1686</lpage>
            <xrefbib>
               <pubid idtype="pmpid" link="fulltext">1908881</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B53">
            <title>
               <p>CD4<sup>+ </sup>T cells recognizing a single self-peptide expressed by APCs induce spontaneous autoimmune arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Rankin</snm>
                  <fnm>AL</fnm>
               </au>
               <au>
                  <snm>Reed</snm>
                  <fnm>AJ</fnm>
               </au>
               <au>
                  <snm>Oh</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Cozzo Picca</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Guay</snm>
                  <fnm>HM</fnm>
               </au>
               <au>
                  <snm>Larkin</snm>
                  <fnm>J</fnm>
                  <suf>3rd</suf>
               </au>
               <au>
                  <snm>Panarey</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Aitken</snm>
                  <fnm>MK</fnm>
               </au>
               <au>
                  <snm>Koeberlein</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Lipsky</snm>
                  <fnm>PE</fnm>
               </au>
               <au>
                  <snm>Tomaszewski</snm>
                  <fnm>JE</fnm>
               </au>
               <au>
                  <snm>Naji</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Caton</snm>
                  <fnm>AJ</fnm>
               </au>
            </aug>
            <source>J Immunol</source>
            <pubdate>2008</pubdate>
            <volume>180</volume>
            <fpage>833</fpage>
            <lpage>841</lpage>
            <xrefbib>
               <pubid idtype="pmpid" link="fulltext">18178822</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B54">
            <title>
               <p>A point mutation of Tyr-759 in interleukin 6 family cytokine receptor subunit gp130 causes autoimmune arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Atsumi</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Ishihara</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Kamimura</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Ikushima</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Ohtani</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Hirota</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Kobayashi</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Park</snm>
                  <fnm>SJ</fnm>
               </au>
               <au>
                  <snm>Saeki</snm>
                  <fnm>Y</fnm>
               </au>
               <au>
                  <snm>Kitamura</snm>
                  <fnm>Y</fnm>
               </au>
               <au>
                  <snm>Hirano</snm>
                  <fnm>T</fnm>
               </au>
            </aug>
            <source>J Exp Med</source>
            <pubdate>2002</pubdate>
            <volume>196</volume>
            <fpage>979</fpage>
            <lpage>990</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1084/jem.20020619</pubid>
                  <pubid idtype="pmcid">2194024</pubid>
                  <pubid idtype="pmpid" link="fulltext">12370259</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B55">
            <title>
               <p>Altered thymic T-cell selection due to a mutation of the ZAP-70 gene causes autoimmune arthritis in mice</p>
            </title>
            <aug>
               <au>
                  <snm>Sakaguchi</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Takahashi</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Hata</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Nomura</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Tagami</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Yamazaki</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Sakihama</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Matsutani</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Negishi</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Nakatsuru</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Sakaguchi</snm>
                  <fnm>S</fnm>
               </au>
            </aug>
            <source>Nature</source>
            <pubdate>2003</pubdate>
            <volume>426</volume>
            <fpage>454</fpage>
            <lpage>460</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/nature02119</pubid>
                  <pubid idtype="pmpid" link="fulltext">14647385</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B56">
            <title>
               <p>T cell self-reactivity forms a cytokine milieu for spontaneous development of IL-17<sup>+ </sup>Th cells that cause autoimmune arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Hirota</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Hashimoto</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Yoshitomi</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Tanaka</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Nomura</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Yamaguchi</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Iwakura</snm>
                  <fnm>Y</fnm>
               </au>
               <au>
                  <snm>Sakaguchi</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Sakaguchi</snm>
                  <fnm>S</fnm>
               </au>
            </aug>
            <source>J Exp Med</source>
            <pubdate>2007</pubdate>
            <volume>204</volume>
            <fpage>41</fpage>
            <lpage>47</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1084/jem.20062259</pubid>
                  <pubid idtype="pmcid">2118414</pubid>
                  <pubid idtype="pmpid" link="fulltext">17227914</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B57">
            <title>
               <p>Homeostatic expansion of T cells during immune insufficiency generates autoimmunity</p>
            </title>
            <aug>
               <au>
                  <snm>King</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Ilic</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Koelsch</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Sarvetnick</snm>
                  <fnm>N</fnm>
               </au>
            </aug>
            <source>Cell</source>
            <pubdate>2004</pubdate>
            <volume>117</volume>
            <fpage>265</fpage>
            <lpage>277</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1016/S0092-8674(04)00335-6</pubid>
                  <pubid idtype="pmpid" link="fulltext">15084263</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B58">
            <title>
               <p>CD4 T cells, lymphopenia, and IL-7 in a multistep pathway to autoimmunity</p>
            </title>
            <aug>
               <au>
                  <snm>Calzascia</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Pellegrini</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Lin</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Garza</snm>
                  <fnm>KM</fnm>
               </au>
               <au>
                  <snm>Elford</snm>
                  <fnm>AR</fnm>
               </au>
               <au>
                  <snm>Shahinian</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Ohashi</snm>
                  <fnm>PS</fnm>
               </au>
               <au>
                  <snm>Mak</snm>
                  <fnm>TW</fnm>
               </au>
            </aug>
            <source>Proc Natl Acad Sci USA</source>
            <pubdate>2008</pubdate>
            <volume>105</volume>
            <fpage>2999</fpage>
            <lpage>3004</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1073/pnas.0712135105</pubid>
                  <pubid idtype="pmcid">2268574</pubid>
                  <pubid idtype="pmpid" link="fulltext">18287017</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B59">
            <title>
               <p>Altered signalling thresholds in T lymphocytes cause autoimmune arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Cope</snm>
                  <fnm>AP</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2004</pubdate>
            <volume>6</volume>
            <fpage>112</fpage>
            <lpage>116</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar1185</pubid>
                  <pubid idtype="pmcid">416454</pubid>
                  <pubid idtype="pmpid" link="fulltext">15142260</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B60">
            <title>
               <p>High avidity autoreactive T cells with a low signalling capacity through the T-cell receptor: central to rheumatoid arthritis pathogenesis?</p>
            </title>
            <aug>
               <au>
                  <snm>Thomas</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Turner</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Cope</snm>
                  <fnm>AP</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2008</pubdate>
            <volume>10</volume>
            <fpage>210</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar2446</pubid>
                  <pubid idtype="pmcid">2575618</pubid>
                  <pubid idtype="pmpid" link="fulltext">18710589</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B61">
            <title>
               <p>Rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Immunol Rev</source>
            <pubdate>2005</pubdate>
            <volume>204</volume>
            <fpage>55</fpage>
            <lpage>73</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1111/j.0105-2896.2005.00245.x</pubid>
                  <pubid idtype="pmpid" link="fulltext">15790350</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B62">
            <title>
               <p>Aging, autoimmunity and arthritis: T-cell senescence and contraction of T-cell repertoire diversity-catalysts of autoimmunity and chronic inflammation</p>
            </title>
            <aug>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2003</pubdate>
            <volume>5</volume>
            <fpage>225</fpage>
            <lpage>234</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar974</pubid>
                  <pubid idtype="pmcid">193735</pubid>
                  <pubid idtype="pmpid" link="fulltext">12932282</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B63">
            <title>
               <p>Telomeres in T and B cells</p>
            </title>
            <aug>
               <au>
                  <snm>Hodes</snm>
                  <fnm>RJ</fnm>
               </au>
               <au>
                  <snm>Hathcock</snm>
                  <fnm>KS</fnm>
               </au>
               <au>
                  <snm>Weng</snm>
                  <fnm>NP</fnm>
               </au>
            </aug>
            <source>Nat Rev Immunol</source>
            <pubdate>2002</pubdate>
            <volume>2</volume>
            <fpage>699</fpage>
            <lpage>706</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/nri890</pubid>
                  <pubid idtype="pmpid" link="fulltext">12209138</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B64">
            <title>
               <p>T cell homeostasis in patients with rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Koetz</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Bryl</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Spickschen</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>O'Fallon</snm>
                  <fnm>WM</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Proc Natl Acad Sci USA</source>
            <pubdate>2000</pubdate>
            <volume>97</volume>
            <fpage>9203</fpage>
            <lpage>9208</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1073/pnas.97.16.9203</pubid>
                  <pubid idtype="pmcid">16846</pubid>
                  <pubid idtype="pmpid" link="fulltext">10922071</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B65">
            <title>
               <p>Defective proliferative capacity and accelerated telomeric loss of hematopoietic progenitor cells in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Colmegna</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Diaz-Borjon</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Fujii</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Schaefer</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2008</pubdate>
            <volume>58</volume>
            <fpage>990</fpage>
            <lpage>1000</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.23287</pubid>
                  <pubid idtype="pmpid" link="fulltext">18383391</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B66">
            <title>
               <p>Premature telomeric loss in rheumatoid arthritis is genetically determined and involves both myeloid and lymphoid cell lineages</p>
            </title>
            <aug>
               <au>
                  <snm>Schonland</snm>
                  <fnm>SO</fnm>
               </au>
               <au>
                  <snm>Lopez</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Widmann</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Zimmer</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Bryl</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Proc Natl Acad Sci USA</source>
            <pubdate>2003</pubdate>
            <volume>100</volume>
            <fpage>13471</fpage>
            <lpage>13476</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1073/pnas.2233561100</pubid>
                  <pubid idtype="pmcid">263838</pubid>
                  <pubid idtype="pmpid" link="fulltext">14578453</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B67">
            <title>
               <p>Telomerase insufficiency in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Fujii</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Shao</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Colmegna</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Proc Natl Acad Sci USA</source>
            <pubdate>2009</pubdate>
            <volume>106</volume>
            <fpage>4360</fpage>
            <lpage>4365</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1073/pnas.0811332106</pubid>
                  <pubid idtype="pmcid">2657451</pubid>
                  <pubid idtype="pmpid" link="fulltext">19255426</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B68">
            <title>
               <p>Deficiency of the DNA repair enzyme ATM in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Shao</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Fujii</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Colmegna</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Oishi</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>J Exp Med</source>
            <pubdate>2009</pubdate>
            <volume>206</volume>
            <fpage>1435</fpage>
            <lpage>1449</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1084/jem.20082251</pubid>
                  <pubid idtype="pmpid" link="fulltext">19451263</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B69">
            <title>
               <p>Changes in thymic function with age and during the treatment of HIV infection</p>
            </title>
            <aug>
               <au>
                  <snm>Douek</snm>
                  <fnm>DC</fnm>
               </au>
               <au>
                  <snm>McFarland</snm>
                  <fnm>RD</fnm>
               </au>
               <au>
                  <snm>Keiser</snm>
                  <fnm>PH</fnm>
               </au>
               <au>
                  <snm>Gage</snm>
                  <fnm>EA</fnm>
               </au>
               <au>
                  <snm>Massey</snm>
                  <fnm>JM</fnm>
               </au>
               <au>
                  <snm>Haynes</snm>
                  <fnm>BF</fnm>
               </au>
               <au>
                  <snm>Polis</snm>
                  <fnm>MA</fnm>
               </au>
               <au>
                  <snm>Haase</snm>
                  <fnm>AT</fnm>
               </au>
               <au>
                  <snm>Feinberg</snm>
                  <fnm>MB</fnm>
               </au>
               <au>
                  <snm>Sullivan</snm>
                  <fnm>JL</fnm>
               </au>
               <au>
                  <snm>Jamieson</snm>
                  <fnm>BD</fnm>
               </au>
               <au>
                  <snm>Zack</snm>
                  <fnm>JA</fnm>
               </au>
               <au>
                  <snm>Picker</snm>
                  <fnm>LJ</fnm>
               </au>
               <au>
                  <snm>Koup</snm>
                  <fnm>RA</fnm>
               </au>
            </aug>
            <source>Nature</source>
            <pubdate>1998</pubdate>
            <volume>396</volume>
            <fpage>690</fpage>
            <lpage>695</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/25374</pubid>
                  <pubid idtype="pmpid" link="fulltext">9872319</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B70">
            <title>
               <p>The effects of age, thymectomy, and HIV Infection on alpha and beta TCR excision circles in naive T cells</p>
            </title>
            <aug>
               <au>
                  <snm>Dool</snm>
                  <mnm>van den</mnm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>de Boer</snm>
                  <fnm>RJ</fnm>
               </au>
            </aug>
            <source>J Immunol</source>
            <pubdate>2006</pubdate>
            <volume>177</volume>
            <fpage>4391</fpage>
            <lpage>4401</lpage>
            <xrefbib>
               <pubid idtype="pmpid" link="fulltext">16982874</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B71">
            <title>
               <p>Thymic function and peripheral T-cell homeostasis in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Trends Immunol</source>
            <pubdate>2001</pubdate>
            <volume>22</volume>
            <fpage>251</fpage>
            <lpage>255</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1016/S1471-4906(00)01841-X</pubid>
                  <pubid idtype="pmpid" link="fulltext">11323282</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B72">
            <title>
               <p>Perturbation of the T cell repertoire in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Wagner</snm>
                  <fnm>UG</fnm>
               </au>
               <au>
                  <snm>Koetz</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
            </aug>
            <source>Proc Natl Acad Sci USA</source>
            <pubdate>1998</pubdate>
            <volume>95</volume>
            <fpage>14447</fpage>
            <lpage>14452</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1073/pnas.95.24.14447</pubid>
                  <pubid idtype="pmcid">24393</pubid>
                  <pubid idtype="pmpid" link="fulltext">9826720</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B73">
            <title>
               <p>Autoantibody systems in rheumatoid arthritis: specificity, sensitivity and diagnostic value</p>
            </title>
            <aug>
               <au>
                  <snm>van Boekel</snm>
                  <fnm>MA</fnm>
               </au>
               <au>
                  <snm>Vossenaar</snm>
                  <fnm>ER</fnm>
               </au>
               <au>
                  <snm>Hoogen</snm>
                  <mnm>van den</mnm>
                  <fnm>FH</fnm>
               </au>
               <au>
                  <snm>van Venrooij</snm>
                  <fnm>WJ</fnm>
               </au>
            </aug>
            <source>Arthritis Res</source>
            <pubdate>2002</pubdate>
            <volume>4</volume>
            <fpage>87</fpage>
            <lpage>93</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar395</pubid>
                  <pubid idtype="pmcid">128920</pubid>
                  <pubid idtype="pmpid" link="fulltext">11879544</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B74">
            <title>
               <p>Sweet and sour: the impact of sugars on disease</p>
            </title>
            <aug>
               <au>
                  <snm>Alavi</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Axford</snm>
                  <fnm>JS</fnm>
               </au>
            </aug>
            <source>Rheumatology (Oxford)</source>
            <pubdate>2008</pubdate>
            <volume>47</volume>
            <fpage>760</fpage>
            <lpage>770</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1093/rheumatology/ken081</pubid>
                  <pubid idtype="pmpid" link="fulltext">18375404</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B75">
            <title>
               <p>TCR ligand discrimination is enforced by competing ERK positive and SHP-1 negative feedback pathways</p>
            </title>
            <aug>
               <au>
                  <snm>Stefanova</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Hemmer</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Vergelli</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Martin</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Biddison</snm>
                  <fnm>WE</fnm>
               </au>
               <au>
                  <snm>Germain</snm>
                  <fnm>RN</fnm>
               </au>
            </aug>
            <source>Nat Immunol</source>
            <pubdate>2003</pubdate>
            <volume>4</volume>
            <fpage>248</fpage>
            <lpage>254</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/ni895</pubid>
                  <pubid idtype="pmpid" link="fulltext">12577055</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B76">
            <title>
               <p>Modeling T cell antigen discrimination based on feedback control of digital ERK responses</p>
            </title>
            <aug>
               <au>
                  <snm>Altan-Bonnet</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>Germain</snm>
                  <fnm>RN</fnm>
               </au>
            </aug>
            <source>PLoS Biol</source>
            <pubdate>2005</pubdate>
            <volume>3</volume>
            <fpage>e356</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1371/journal.pbio.0030356</pubid>
                  <pubid idtype="pmcid">1262625</pubid>
                  <pubid idtype="pmpid" link="fulltext">16231973</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B77">
            <title>
               <p>Increased signal amplification in the Raf-MEK-ERK module of RA T cells</p>
            </title>
            <aug>
               <au>
                  <snm>Singh</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Deshpande</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Pryshchep</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2008</pubdate>
            <volume>58</volume>
            <fpage>S293</fpage>
         </bibl>
         <bibl id="B78">
            <title>
               <p>Interleukin-7 in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Churchman</snm>
                  <fnm>SM</fnm>
               </au>
               <au>
                  <snm>Ponchel</snm>
                  <fnm>F</fnm>
               </au>
            </aug>
            <source>Rheumatology (Oxford)</source>
            <pubdate>2008</pubdate>
            <volume>47</volume>
            <fpage>753</fpage>
            <lpage>759</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1093/rheumatology/ken053</pubid>
                  <pubid idtype="pmpid" link="fulltext">18356170</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B79">
            <title>
               <p>Inter-leukin-15 mediates T cell-dependent regulation of tumor necrosis factor-alpha production in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>McInnes</snm>
                  <fnm>IB</fnm>
               </au>
               <au>
                  <snm>Leung</snm>
                  <fnm>BP</fnm>
               </au>
               <au>
                  <snm>Sturrock</snm>
                  <fnm>RD</fnm>
               </au>
               <au>
                  <snm>Field</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Liew</snm>
                  <fnm>FY</fnm>
               </au>
            </aug>
            <source>Nat Med</source>
            <pubdate>1997</pubdate>
            <volume>3</volume>
            <fpage>189</fpage>
            <lpage>195</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/nm0297-189</pubid>
                  <pubid idtype="pmpid" link="fulltext">9018238</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B80">
            <title>
               <p>Interleukin 21 as a target of intervention in autoimmune disease</p>
            </title>
            <aug>
               <au>
                  <snm>Ettinger</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Kuchen</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Lipsky</snm>
                  <fnm>PE</fnm>
               </au>
            </aug>
            <source>Ann Rheum Dis</source>
            <pubdate>2008</pubdate>
            <volume>67</volume>
            <issue>suppl 3</issue>
            <fpage>iii83</fpage>
            <lpage>iii86</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1136/ard.2008.098400</pubid>
                  <pubid idtype="pmpid" link="fulltext">19022821</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B81">
            <title>
               <p>Analysis of clonal CD8<sup>+ </sup>T cell expansions in normal individuals and patients with rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Fitzgerald</snm>
                  <fnm>JE</fnm>
               </au>
               <au>
                  <snm>Ricalton</snm>
                  <fnm>NS</fnm>
               </au>
               <au>
                  <snm>Meyer</snm>
                  <fnm>AC</fnm>
               </au>
               <au>
                  <snm>West</snm>
                  <fnm>SG</fnm>
               </au>
               <au>
                  <snm>Kaplan</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Behrendt</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Kotzin</snm>
                  <fnm>BL</fnm>
               </au>
            </aug>
            <source>J Immunol</source>
            <pubdate>1995</pubdate>
            <volume>154</volume>
            <fpage>3538</fpage>
            <lpage>3547</lpage>
            <xrefbib>
               <pubid idtype="pmpid" link="fulltext">7897233</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B82">
            <title>
               <p>Oligoclonal T cell proliferation in patients with rheumatoid arthritis and their unaffected siblings</p>
            </title>
            <aug>
               <au>
                  <snm>Waase</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Kayser</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Carlson</snm>
                  <fnm>PJ</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>1996</pubdate>
            <volume>39</volume>
            <fpage>904</fpage>
            <lpage>913</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.1780390606</pubid>
                  <pubid idtype="pmpid" link="fulltext">8651983</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B83">
            <title>
               <p>The repertoire of CD4<sup>+ </sup>CD28<sup>- </sup>T cells in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Schmidt</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Martens</snm>
                  <fnm>PB</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
            </aug>
            <source>Mol Med</source>
            <pubdate>1996</pubdate>
            <volume>2</volume>
            <fpage>608</fpage>
            <lpage>618</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmcid">2230198</pubid>
                  <pubid idtype="pmpid" link="fulltext">8898376</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B84">
            <title>
               <p>CD4<sup>+ </sup>CD7<sup>- </sup>CD28<sup>- </sup>T cells are expanded in rheumatoid arthritis and are characterized by autoreactivity</p>
            </title>
            <aug>
               <au>
                  <snm>Schmidt</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>J Clin Invest</source>
            <pubdate>1996</pubdate>
            <volume>97</volume>
            <fpage>2027</fpage>
            <lpage>2037</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1172/JCI118638</pubid>
                  <pubid idtype="pmcid">507276</pubid>
                  <pubid idtype="pmpid" link="fulltext">8621791</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B85">
            <title>
               <p>Synoviocyte stimulation by the LFA-1-intercellular adhesion molecule-2-Ezrin-Akt pathway in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Singh</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>Colmegna</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>He</snm>
                  <fnm>X</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
            </aug>
            <source>J Immunol</source>
            <pubdate>2008</pubdate>
            <volume>180</volume>
            <fpage>1971</fpage>
            <lpage>1978</lpage>
            <xrefbib>
               <pubid idtype="pmpid" link="fulltext">18209096</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B86">
            <title>
               <p>Tissue trafficking patterns of effector memory CD4<sup>+ </sup>T cells in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Zhang</snm>
                  <fnm>X</fnm>
               </au>
               <au>
                  <snm>Nakajima</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2005</pubdate>
            <volume>52</volume>
            <fpage>3839</fpage>
            <lpage>3849</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.21482</pubid>
                  <pubid idtype="pmpid" link="fulltext">16329093</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B87">
            <title>
               <p>T cell costimulation by fractalkine-expressing synoviocytes in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Sawai</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Park</snm>
                  <fnm>YW</fnm>
               </au>
               <au>
                  <snm>Roberson</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Imai</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2005</pubdate>
            <volume>52</volume>
            <fpage>1392</fpage>
            <lpage>1401</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.21140</pubid>
                  <pubid idtype="pmpid" link="fulltext">15880821</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B88">
            <title>
               <p>Stimulation of T cell autoreactivity by anomalous expression of NKG2D and its MIC ligands in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Groh</snm>
                  <fnm>V</fnm>
               </au>
               <au>
                  <snm>Bruhl</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>El-Gabalawy</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Nelson</snm>
                  <fnm>JL</fnm>
               </au>
               <au>
                  <snm>Spies</snm>
                  <fnm>T</fnm>
               </au>
            </aug>
            <source>Proc Natl Acad Sci USA</source>
            <pubdate>2003</pubdate>
            <volume>100</volume>
            <fpage>9452</fpage>
            <lpage>9457</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1073/pnas.1632807100</pubid>
                  <pubid idtype="pmcid">170939</pubid>
                  <pubid idtype="pmpid" link="fulltext">12878725</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B89">
            <title>
               <p>Killer cell activating receptors function as costimulatory molecules on CD4<sup>+ </sup>CD28<sup>null </sup>T cells clonally expanded in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Namekawa</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Snyder</snm>
                  <fnm>MR</fnm>
               </au>
               <au>
                  <snm>Yen</snm>
                  <fnm>JH</fnm>
               </au>
               <au>
                  <snm>Goehring</snm>
                  <fnm>BE</fnm>
               </au>
               <au>
                  <snm>Leibson</snm>
                  <fnm>PJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
            </aug>
            <source>J Immunol</source>
            <pubdate>2000</pubdate>
            <volume>165</volume>
            <fpage>1138</fpage>
            <lpage>1145</lpage>
            <xrefbib>
               <pubid idtype="pmpid" link="fulltext">10878393</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B90">
            <title>
               <p>Major histocompatibility complex class I-recognizing receptors are disease risk genes in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Yen</snm>
                  <fnm>JH</fnm>
               </au>
               <au>
                  <snm>Moore</snm>
                  <fnm>BE</fnm>
               </au>
               <au>
                  <snm>Nakajima</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Scholl</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Schaid</snm>
                  <fnm>DJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
            </aug>
            <source>J Exp Med</source>
            <pubdate>2001</pubdate>
            <volume>193</volume>
            <fpage>1159</fpage>
            <lpage>1167</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1084/jem.193.10.1159</pubid>
                  <pubid idtype="pmcid">2193323</pubid>
                  <pubid idtype="pmpid" link="fulltext">11369787</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B91">
            <title>
               <p>Co-stimulatory pathways controlling activation and peripheral tolerance of human CD4<sup>+ </sup>CD28<sup>- </sup>T cells</p>
            </title>
            <aug>
               <au>
                  <snm>Park</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
               <au>
                  <snm>Schmidt</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
            </aug>
            <source>Eur J Immunol</source>
            <pubdate>1997</pubdate>
            <volume>27</volume>
            <fpage>1082</fpage>
            <lpage>1090</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/eji.1830270507</pubid>
                  <pubid idtype="pmpid">9174596</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B92">
            <title>
               <p>De novo expression of killer immunoglobulin-like receptors and signaling proteins regulates the cytotoxic function of CD4 T cells in acute coronary syndromes</p>
            </title>
            <aug>
               <au>
                  <snm>Nakajima</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>Goek</snm>
                  <fnm>O</fnm>
               </au>
               <au>
                  <snm>Zhang</snm>
                  <fnm>X</fnm>
               </au>
               <au>
                  <snm>Kopecky</snm>
                  <fnm>SL</fnm>
               </au>
               <au>
                  <snm>Frye</snm>
                  <fnm>RL</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Circ Res</source>
            <pubdate>2003</pubdate>
            <volume>93</volume>
            <fpage>106</fpage>
            <lpage>113</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1161/01.RES.0000082333.58263.58</pubid>
                  <pubid idtype="pmpid" link="fulltext">12816883</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B93">
            <title>
               <p>Prognostic markers of radiographic progression in early rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Matteson</snm>
                  <fnm>EL</fnm>
               </au>
               <au>
                  <snm>Fulbright</snm>
                  <fnm>JW</fnm>
               </au>
               <au>
                  <snm>Warrington</snm>
                  <fnm>KJ</fnm>
               </au>
               <au>
                  <snm>Chang-Miller</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Hunder</snm>
                  <fnm>GG</fnm>
               </au>
               <au>
                  <snm>Mason</snm>
                  <fnm>TG</fnm>
               </au>
               <au>
                  <snm>Nelson</snm>
                  <fnm>AM</fnm>
               </au>
               <au>
                  <snm>Valente</snm>
                  <fnm>RM</fnm>
               </au>
               <au>
                  <snm>Crowson</snm>
                  <fnm>CS</fnm>
               </au>
               <au>
                  <snm>Erlich</snm>
                  <fnm>HA</fnm>
               </au>
               <au>
                  <snm>Reynolds</snm>
                  <fnm>RL</fnm>
               </au>
               <au>
                  <snm>Swee</snm>
                  <fnm>RG</fnm>
               </au>
               <au>
                  <snm>O'Fallon</snm>
                  <fnm>WM</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2004</pubdate>
            <volume>50</volume>
            <fpage>43</fpage>
            <lpage>54</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.11445</pubid>
                  <pubid idtype="pmpid" link="fulltext">14730598</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B94">
            <title>
               <p>Expansion of unusual CD4+ T cells in severe rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Martens</snm>
                  <fnm>PB</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Schaid</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>1997</pubdate>
            <volume>40</volume>
            <fpage>1106</fpage>
            <lpage>1114</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.1780400615</pubid>
                  <pubid idtype="pmpid" link="fulltext">9182921</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B95">
            <title>
               <p>Rheumatoid arthritis is an independent risk factor for multi-vessel coronary artery disease: a case control study</p>
            </title>
            <aug>
               <au>
                  <snm>Warrington</snm>
                  <fnm>KJ</fnm>
               </au>
               <au>
                  <snm>Kent</snm>
                  <fnm>PD</fnm>
               </au>
               <au>
                  <snm>Frye</snm>
                  <fnm>RL</fnm>
               </au>
               <au>
                  <snm>Lymp</snm>
                  <fnm>JF</fnm>
               </au>
               <au>
                  <snm>Kopecky</snm>
                  <fnm>SL</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2005</pubdate>
            <volume>7</volume>
            <fpage>R984</fpage>
            <lpage>R991</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar1775</pubid>
                  <pubid idtype="pmcid">1257428</pubid>
                  <pubid idtype="pmpid" link="fulltext">16207339</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B96">
            <title>
               <p>Recent developments in the immunobiology of rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Andersson</snm>
                  <fnm>AK</fnm>
               </au>
               <au>
                  <snm>Li</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Brennan</snm>
                  <fnm>FM</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2008</pubdate>
            <volume>10</volume>
            <fpage>204</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar2370</pubid>
                  <pubid idtype="pmcid">2453771</pubid>
                  <pubid idtype="pmpid" link="fulltext">18373887</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B97">
            <title>
               <p>TCRzetadim lymphocytes define populations of circulating effector cells that migrate to inflamed tissues</p>
            </title>
            <aug>
               <au>
                  <snm>Zhang</snm>
                  <fnm>Z</fnm>
               </au>
               <au>
                  <snm>Gorman</snm>
                  <fnm>CL</fnm>
               </au>
               <au>
                  <snm>Vermi</snm>
                  <fnm>AC</fnm>
               </au>
               <au>
                  <snm>Monaco</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Foey</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Owen</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Amjadi</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Vallance</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>McClinton</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Marelli-Berg</snm>
                  <fnm>F</fnm>
               </au>
               <etal/>
            </aug>
            <source>Blood</source>
            <pubdate>2007</pubdate>
            <volume>109</volume>
            <fpage>4328</fpage>
            <lpage>4335</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1182/blood-2006-12-064170</pubid>
                  <pubid idtype="pmcid">1939810</pubid>
                  <pubid idtype="pmpid" link="fulltext">17255353</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B98">
            <title>
               <p>Restoring function in exhausted CD8 T cells during chronic viral infection</p>
            </title>
            <aug>
               <au>
                  <snm>Barber</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Wherry</snm>
                  <fnm>EJ</fnm>
               </au>
               <au>
                  <snm>Masopust</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Zhu</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Allison</snm>
                  <fnm>JP</fnm>
               </au>
               <au>
                  <snm>Sharpe</snm>
                  <fnm>AH</fnm>
               </au>
               <au>
                  <snm>Freeman</snm>
                  <fnm>GJ</fnm>
               </au>
               <au>
                  <snm>Ahmed</snm>
                  <fnm>R</fnm>
               </au>
            </aug>
            <source>Nature</source>
            <pubdate>2006</pubdate>
            <volume>439</volume>
            <fpage>682</fpage>
            <lpage>687</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1038/nature04444</pubid>
                  <pubid idtype="pmpid" link="fulltext">16382236</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B99">
            <title>
               <p>Studies of T-cell activation in chronic inflammation</p>
            </title>
            <aug>
               <au>
                  <snm>Cope</snm>
                  <fnm>AP</fnm>
               </au>
            </aug>
            <source>Arthritis Res</source>
            <pubdate>2002</pubdate>
            <volume>4</volume>
            <issue>suppl 3</issue>
            <fpage>S197</fpage>
            <lpage>S211</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar557</pubid>
                  <pubid idtype="pmpid" link="fulltext">12110140</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B100">
            <title>
               <p>Altered T lymphocyte signaling in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Allen</snm>
                  <fnm>ME</fnm>
               </au>
               <au>
                  <snm>Young</snm>
                  <fnm>SP</fnm>
               </au>
               <au>
                  <snm>Michell</snm>
                  <fnm>RH</fnm>
               </au>
               <au>
                  <snm>Bacon</snm>
                  <fnm>PA</fnm>
               </au>
            </aug>
            <source>Eur J Immunol</source>
            <pubdate>1995</pubdate>
            <volume>25</volume>
            <fpage>1547</fpage>
            <lpage>1554</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/eji.1830250612</pubid>
                  <pubid idtype="pmpid" link="fulltext">7614981</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B101">
            <title>
               <p>Evidence that rheumatoid arthritis synovial T cells are similar to cytokine-activated T cells: involvement of phosphatidylinositol 3-kinase and nuclear factor kappaB pathways in tumor necrosis factor alpha production in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Brennan</snm>
                  <fnm>FM</fnm>
               </au>
               <au>
                  <snm>Hayes</snm>
                  <fnm>AL</fnm>
               </au>
               <au>
                  <snm>Ciesielski</snm>
                  <fnm>CJ</fnm>
               </au>
               <au>
                  <snm>Green</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Foxwell</snm>
                  <fnm>BM</fnm>
               </au>
               <au>
                  <snm>Feldmann</snm>
                  <fnm>M</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2002</pubdate>
            <volume>46</volume>
            <fpage>31</fpage>
            <lpage>41</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/1529-0131(200201)46:1&lt;31::AID-ART10029&gt;3.0.CO;2-5</pubid>
                  <pubid idtype="pmpid" link="fulltext">11822409</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B102">
            <title>
               <p>Modulation of CD28 expression with anti-tumor necrosis factor alpha therapy in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Bryl</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Vallejo</snm>
                  <fnm>AN</fnm>
               </au>
               <au>
                  <snm>Matteson</snm>
                  <fnm>EL</fnm>
               </au>
               <au>
                  <snm>Witkowski</snm>
                  <fnm>JM</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2005</pubdate>
            <volume>52</volume>
            <fpage>2996</fpage>
            <lpage>3003</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.21353</pubid>
                  <pubid idtype="pmpid" link="fulltext">16200579</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B103">
            <title>
               <p>Molecular signature of CD8<sup>+ </sup>T cell exhaustion during chronic viral infection</p>
            </title>
            <aug>
               <au>
                  <snm>Wherry</snm>
                  <fnm>EJ</fnm>
               </au>
               <au>
                  <snm>Ha</snm>
                  <fnm>SJ</fnm>
               </au>
               <au>
                  <snm>Kaech</snm>
                  <fnm>SM</fnm>
               </au>
               <au>
                  <snm>Haining</snm>
                  <fnm>WN</fnm>
               </au>
               <au>
                  <snm>Sarkar</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Kalia</snm>
                  <fnm>V</fnm>
               </au>
               <au>
                  <snm>Subramaniam</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Blattman</snm>
                  <fnm>JN</fnm>
               </au>
               <au>
                  <snm>Barber</snm>
                  <fnm>DL</fnm>
               </au>
               <au>
                  <snm>Ahmed</snm>
                  <fnm>R</fnm>
               </au>
            </aug>
            <source>Immunity</source>
            <pubdate>2007</pubdate>
            <volume>27</volume>
            <fpage>670</fpage>
            <lpage>684</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1016/j.immuni.2007.09.006</pubid>
                  <pubid idtype="pmpid" link="fulltext">17950003</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B104">
            <title>
               <p>Citrulline is an essential constituent of antigenic determinants recognized by rheumatoid arthritis-specific autoantibodies</p>
            </title>
            <aug>
               <au>
                  <snm>Schellekens</snm>
                  <fnm>GA</fnm>
               </au>
               <au>
                  <snm>de Jong</snm>
                  <fnm>BA</fnm>
               </au>
               <au>
                  <snm>Hoogen</snm>
                  <mnm>van den</mnm>
                  <fnm>FH</fnm>
               </au>
               <au>
                  <snm>Putte</snm>
                  <mnm>van de</mnm>
                  <fnm>LB</fnm>
               </au>
               <au>
                  <snm>van Venrooij</snm>
                  <fnm>WJ</fnm>
               </au>
            </aug>
            <source>J Clin Invest</source>
            <pubdate>1998</pubdate>
            <volume>101</volume>
            <fpage>273</fpage>
            <lpage>281</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1172/JCI1316</pubid>
                  <pubid idtype="pmcid">508564</pubid>
                  <pubid idtype="pmpid" link="fulltext">9421490</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B105">
            <title>
               <p>Rheumatoid arthritis specific anti-Sa antibodies target citrullinated vimentin</p>
            </title>
            <aug>
               <au>
                  <snm>Vossenaar</snm>
                  <fnm>ER</fnm>
               </au>
               <au>
                  <snm>Despres</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Lapointe</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Heijden</snm>
                  <mnm>van der</mnm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Lora</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Senshu</snm>
                  <fnm>T</fnm>
               </au>
               <au>
                  <snm>van Venrooij</snm>
                  <fnm>WJ</fnm>
               </au>
               <au>
                  <snm>Menard</snm>
                  <fnm>HA</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2004</pubdate>
            <volume>6</volume>
            <fpage>R142</fpage>
            <lpage>R150</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar1149</pubid>
                  <pubid idtype="pmcid">400433</pubid>
                  <pubid idtype="pmpid" link="fulltext">15059278</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B106">
            <title>
               <p>Changes in normal glycosylation mechanisms in autoimmune rheumatic disease</p>
            </title>
            <aug>
               <au>
                  <snm>Axford</snm>
                  <fnm>JS</fnm>
               </au>
               <au>
                  <snm>Sumar</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Alavi</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Isenberg</snm>
                  <fnm>DA</fnm>
               </au>
               <au>
                  <snm>Young</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Bodman</snm>
                  <fnm>KB</fnm>
               </au>
               <au>
                  <snm>Roitt</snm>
                  <fnm>IM</fnm>
               </au>
            </aug>
            <source>J Clin Invest</source>
            <pubdate>1992</pubdate>
            <volume>89</volume>
            <fpage>1021</fpage>
            <lpage>1031</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1172/JCI115643</pubid>
                  <pubid idtype="pmcid">442952</pubid>
                  <pubid idtype="pmpid" link="fulltext">1347295</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B107">
            <title>
               <p>A new model for an etiology of rheumatoid arthritis: smoking may trigger HLA-DR (shared epitope)-restricted immune reactions to autoantigens modified by citrullination</p>
            </title>
            <aug>
               <au>
                  <snm>Klareskog</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Stolt</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Lundberg</snm>
                  <fnm>K</fnm>
               </au>
               <au>
                  <snm>K&#228;llberg</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Bengtsson</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Grunewald</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>R&#246;nnelid</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Harris</snm>
                  <fnm>HE</fnm>
               </au>
               <au>
                  <snm>Ulfgren</snm>
                  <fnm>AK</fnm>
               </au>
               <au>
                  <snm>Rantap&#228;&#228;-Dahlqvist</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Eklund</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Padyukov</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Alfredsson</snm>
                  <fnm>L</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2006</pubdate>
            <volume>54</volume>
            <fpage>38</fpage>
            <lpage>46</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.21575</pubid>
                  <pubid idtype="pmpid" link="fulltext">16385494</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B108">
            <title>
               <p>Rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Klareskog</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Catrina</snm>
                  <fnm>AI</fnm>
               </au>
               <au>
                  <snm>Paget</snm>
                  <fnm>S</fnm>
               </au>
            </aug>
            <source>Lancet</source>
            <pubdate>2009</pubdate>
            <volume>373</volume>
            <fpage>659</fpage>
            <lpage>672</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1016/S0140-6736(09)60008-8</pubid>
                  <pubid idtype="pmpid" link="fulltext">19157532</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B109">
            <title>
               <p>Interaction between smoking, the shared epitope, and anti-cyclic citrullinated peptide: a mixed picture in three large North American rheumatoid arthritis cohorts</p>
            </title>
            <aug>
               <au>
                  <snm>Lee</snm>
                  <fnm>HS</fnm>
               </au>
               <au>
                  <snm>Irigoyen</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Kern</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Batliwalla</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Khalili</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Wolfe</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Lum</snm>
                  <fnm>RF</fnm>
               </au>
               <au>
                  <snm>Massarotti</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Weisman</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Bombardier</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Karlson</snm>
                  <fnm>EW</fnm>
               </au>
               <au>
                  <snm>Criswell</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Vlietinck</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Gregersen</snm>
                  <fnm>PK</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2007</pubdate>
            <volume>56</volume>
            <fpage>1745</fpage>
            <lpage>1753</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.22703</pubid>
                  <pubid idtype="pmpid" link="fulltext">17530703</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B110">
            <title>
               <p>Smoking is a risk factor for anti-CCP antibodies only in rheumatoid arthritis patients who carry HLA-DRB1 shared epitope alleles</p>
            </title>
            <aug>
               <au>
                  <snm>Linn-Rasker</snm>
                  <fnm>SP</fnm>
               </au>
               <au>
                  <snm>Helm-van Mil</snm>
                  <mnm>van der</mnm>
                  <fnm>AH</fnm>
               </au>
               <au>
                  <snm>van Gaalen</snm>
                  <fnm>FA</fnm>
               </au>
               <au>
                  <snm>Kloppenburg</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>de Vries</snm>
                  <fnm>RR</fnm>
               </au>
               <au>
                  <snm>le Cessie</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Breedveld</snm>
                  <fnm>FC</fnm>
               </au>
               <au>
                  <snm>Toes</snm>
                  <fnm>RE</fnm>
               </au>
               <au>
                  <snm>Huizinga</snm>
                  <fnm>TW</fnm>
               </au>
            </aug>
            <source>Ann Rheum Dis</source>
            <pubdate>2006</pubdate>
            <volume>65</volume>
            <fpage>366</fpage>
            <lpage>371</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1136/ard.2005.041079</pubid>
                  <pubid idtype="pmcid">1798061</pubid>
                  <pubid idtype="pmpid" link="fulltext">16014670</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B111">
            <title>
               <p>New autoantigens in rheumatoid arthritis (RA): screening 8268 protein arrays with sera from patients with RA</p>
            </title>
            <aug>
               <au>
                  <snm>Auger</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Balandraud</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Rak</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Lambert</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Martin</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Roudier</snm>
                  <fnm>J</fnm>
               </au>
            </aug>
            <source>Ann Rheum Dis</source>
            <pubdate>2009</pubdate>
            <volume>68</volume>
            <fpage>591</fpage>
            <lpage>594</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1136/ard.2008.096917</pubid>
                  <pubid idtype="pmpid" link="fulltext">18957483</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B112">
            <title>
               <p>Candidate autoantigens identified by mass spectrometry in early rheumatoid arthritis are chaperones and citrullinated glycolytic enzymes</p>
            </title>
            <aug>
               <au>
                  <snm>Goeb</snm>
                  <fnm>V</fnm>
               </au>
               <au>
                  <snm>Thomas-L'Otellier</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Daveau</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Charlionet</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Fardellone</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Le Loet</snm>
                  <fnm>X</fnm>
               </au>
               <au>
                  <snm>Tron</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Gilbert</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Vittecoq</snm>
                  <fnm>O</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2009</pubdate>
            <volume>11</volume>
            <fpage>R38</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar2644</pubid>
                  <pubid idtype="pmcid">2688184</pubid>
                  <pubid idtype="pmpid" link="fulltext">19284558</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B113">
            <title>
               <p>The incidence of rheumatoid arthritis is predicted by rheumatoid factor titer in a longitudinal population study</p>
            </title>
            <aug>
               <au>
                  <snm>del Puente</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Knowler</snm>
                  <fnm>WC</fnm>
               </au>
               <au>
                  <snm>Pettitt</snm>
                  <fnm>DJ</fnm>
               </au>
               <au>
                  <snm>Bennett</snm>
                  <fnm>PH</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>1988</pubdate>
            <volume>31</volume>
            <fpage>1239</fpage>
            <lpage>1244</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.1780311004</pubid>
                  <pubid idtype="pmpid">3178905</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B114">
            <title>
               <p>Duration of preclinical rheumatoid arthritis-related autoantibody positivity increases in subjects with older age at time of disease diagnosis</p>
            </title>
            <aug>
               <au>
                  <snm>Majka</snm>
                  <fnm>DS</fnm>
               </au>
               <au>
                  <snm>Deane</snm>
                  <fnm>KD</fnm>
               </au>
               <au>
                  <snm>Parrish</snm>
                  <fnm>LA</fnm>
               </au>
               <au>
                  <snm>Lazar</snm>
                  <fnm>AA</fnm>
               </au>
               <au>
                  <snm>Baron</snm>
                  <fnm>AE</fnm>
               </au>
               <au>
                  <snm>Walker</snm>
                  <fnm>CW</fnm>
               </au>
               <au>
                  <snm>Rubertone</snm>
                  <fnm>MV</fnm>
               </au>
               <au>
                  <snm>Gilliland</snm>
                  <fnm>WR</fnm>
               </au>
               <au>
                  <snm>Norris</snm>
                  <fnm>JM</fnm>
               </au>
               <au>
                  <snm>Holers</snm>
                  <fnm>VM</fnm>
               </au>
            </aug>
            <source>Ann Rheum Dis</source>
            <pubdate>2008</pubdate>
            <volume>67</volume>
            <fpage>801</fpage>
            <lpage>807</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1136/ard.2007.076679</pubid>
                  <pubid idtype="pmpid" link="fulltext">17974596</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B115">
            <title>
               <p>Biomarkers of inflammation and development of rheumatoid arthritis in women from two prospective cohort studies</p>
            </title>
            <aug>
               <au>
                  <snm>Karlson</snm>
                  <fnm>EW</fnm>
               </au>
               <au>
                  <snm>Chibnik</snm>
                  <fnm>LB</fnm>
               </au>
               <au>
                  <snm>Tworoger</snm>
                  <fnm>SS</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>IM</fnm>
               </au>
               <au>
                  <snm>Buring</snm>
                  <fnm>JE</fnm>
               </au>
               <au>
                  <snm>Shadick</snm>
                  <fnm>NA</fnm>
               </au>
               <au>
                  <snm>Manson</snm>
                  <fnm>JE</fnm>
               </au>
               <au>
                  <snm>Costenbader</snm>
                  <fnm>KH</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2009</pubdate>
            <volume>60</volume>
            <fpage>641</fpage>
            <lpage>652</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.24350</pubid>
                  <pubid idtype="pmpid" link="fulltext">19248103</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B116">
            <title>
               <p>Arthritis induced by posttranslationally modified (citrullinated) fibrinogen in DR4-IE transgenic mice</p>
            </title>
            <aug>
               <au>
                  <snm>Hill</snm>
                  <fnm>JA</fnm>
               </au>
               <au>
                  <snm>Bell</snm>
                  <fnm>DA</fnm>
               </au>
               <au>
                  <snm>Brintnell</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Yue</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Wehrli</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Jevnikar</snm>
                  <fnm>AM</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>DM</fnm>
               </au>
               <au>
                  <snm>Hueber</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Robinson</snm>
                  <fnm>WH</fnm>
               </au>
               <au>
                  <snm>Cairns</snm>
                  <fnm>E</fnm>
               </au>
            </aug>
            <source>J Exp Med</source>
            <pubdate>2008</pubdate>
            <volume>205</volume>
            <fpage>967</fpage>
            <lpage>979</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1084/jem.20072051</pubid>
                  <pubid idtype="pmcid">2292232</pubid>
                  <pubid idtype="pmpid" link="fulltext">18391064</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B117">
            <title>
               <p>Antibodies against citrullinated proteins enhance tissue injury in experimental autoimmune arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Kuhn</snm>
                  <fnm>KA</fnm>
               </au>
               <au>
                  <snm>Kulik</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Tomooka</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Braschler</snm>
                  <fnm>KJ</fnm>
               </au>
               <au>
                  <snm>Arend</snm>
                  <fnm>WP</fnm>
               </au>
               <au>
                  <snm>Robinson</snm>
                  <fnm>WH</fnm>
               </au>
               <au>
                  <snm>Holers</snm>
                  <fnm>VM</fnm>
               </au>
            </aug>
            <source>J Clin Invest</source>
            <pubdate>2006</pubdate>
            <volume>116</volume>
            <fpage>961</fpage>
            <lpage>973</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1172/JCI25422</pubid>
                  <pubid idtype="pmcid">1421345</pubid>
                  <pubid idtype="pmpid" link="fulltext">16585962</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B118">
            <title>
               <p>Structure and pathogenicity of antibodies specific for citrullinated collagen type II in experimental arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Uysal</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Bockermann</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Nandakumar</snm>
                  <fnm>KS</fnm>
               </au>
               <au>
                  <snm>Sehnert</snm>
                  <fnm>B</fnm>
               </au>
               <au>
                  <snm>Bajtner</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Engstrom</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Serre</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>Burkhardt</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Thunnissen</snm>
                  <fnm>MM</fnm>
               </au>
               <au>
                  <snm>Holmdahl</snm>
                  <fnm>R</fnm>
               </au>
            </aug>
            <source>J Exp Med</source>
            <pubdate>2009</pubdate>
            <volume>206</volume>
            <fpage>449</fpage>
            <lpage>462</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1084/jem.20081862</pubid>
                  <pubid idtype="pmcid">2646582</pubid>
                  <pubid idtype="pmpid" link="fulltext">19204106</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B119">
            <title>
               <p>Cells of the synovium in rheumatoid arthritis. Dendritic cells</p>
            </title>
            <aug>
               <au>
                  <snm>Lutzky</snm>
                  <fnm>V</fnm>
               </au>
               <au>
                  <snm>Hannawi</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Thomas</snm>
                  <fnm>R</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2007</pubdate>
            <volume>9</volume>
            <fpage>219</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar2200</pubid>
                  <pubid idtype="pmcid">2206384</pubid>
                  <pubid idtype="pmpid" link="fulltext">17850683</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B120">
            <title>
               <p>Human peripheral blood dendritic cell subsets. Isolation and characterization of precursor and mature antigen-presenting cells</p>
            </title>
            <aug>
               <au>
                  <snm>Thomas</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Lipsky</snm>
                  <fnm>PE</fnm>
               </au>
            </aug>
            <source>J Immunol</source>
            <pubdate>1994</pubdate>
            <volume>153</volume>
            <fpage>4016</fpage>
            <lpage>4028</lpage>
            <xrefbib>
               <pubid idtype="pmpid" link="fulltext">7523513</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B121">
            <title>
               <p>Lymphoid neogenesis in rheumatoid synovitis</p>
            </title>
            <aug>
               <au>
                  <snm>Takemura</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Braun</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Crowson</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Kurtin</snm>
                  <fnm>PJ</fnm>
               </au>
               <au>
                  <snm>Cofield</snm>
                  <fnm>RH</fnm>
               </au>
               <au>
                  <snm>O'Fallon</snm>
                  <fnm>WM</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>J Immunol</source>
            <pubdate>2001</pubdate>
            <volume>167</volume>
            <fpage>1072</fpage>
            <lpage>1080</lpage>
            <xrefbib>
               <pubid idtype="pmpid" link="fulltext">11441118</pubid>
            </xrefbib>
         </bibl>
         <bibl id="B122">
            <title>
               <p>Ectopic lymphoid organogenesis: a fast track for autoimmunity</p>
            </title>
            <aug>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
               <au>
                  <snm>Kurtin</snm>
                  <fnm>PJ</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
            </aug>
            <source>Am J Pathol</source>
            <pubdate>2001</pubdate>
            <volume>159</volume>
            <fpage>787</fpage>
            <lpage>793</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmcid">1850453</pubid>
                  <pubid idtype="pmpid" link="fulltext">11549568</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B123">
            <title>
               <p>BLyS and APRIL in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Seyler</snm>
                  <fnm>TM</fnm>
               </au>
               <au>
                  <snm>Park</snm>
                  <fnm>YW</fnm>
               </au>
               <au>
                  <snm>Takemura</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Bram</snm>
                  <fnm>RJ</fnm>
               </au>
               <au>
                  <snm>Kurtin</snm>
                  <fnm>PJ</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>J Clin Invest</source>
            <pubdate>2005</pubdate>
            <volume>115</volume>
            <fpage>3083</fpage>
            <lpage>3092</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1172/JCI25265</pubid>
                  <pubid idtype="pmcid">1257539</pubid>
                  <pubid idtype="pmpid" link="fulltext">16239971</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B124">
            <title>
               <p>Differentiation of B cells in the nonlymphoid tissue of the synovial membrane of patients with rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Schroder</snm>
                  <fnm>AE</fnm>
               </au>
               <au>
                  <snm>Greiner</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Seyfert</snm>
                  <fnm>C</fnm>
               </au>
               <au>
                  <snm>Berek</snm>
                  <fnm>C</fnm>
               </au>
            </aug>
            <source>Proc Natl Acad Sci USA</source>
            <pubdate>1996</pubdate>
            <volume>93</volume>
            <fpage>221</fpage>
            <lpage>225</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1073/pnas.93.1.221</pubid>
                  <pubid idtype="pmcid">40210</pubid>
                  <pubid idtype="pmpid" link="fulltext">8552609</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B125">
            <title>
               <p>Human interleukin-17: A T cell-derived proinflammatory cytokine produced by the rheumatoid synovium</p>
            </title>
            <aug>
               <au>
                  <snm>Chabaud</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Durand</snm>
                  <fnm>JM</fnm>
               </au>
               <au>
                  <snm>Buchs</snm>
                  <fnm>N</fnm>
               </au>
               <au>
                  <snm>Fossiez</snm>
                  <fnm>F</fnm>
               </au>
               <au>
                  <snm>Page</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>Frappart</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Miossec</snm>
                  <fnm>P</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>1999</pubdate>
            <volume>42</volume>
            <fpage>963</fpage>
            <lpage>970</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/1529-0131(199905)42:5&lt;963::AID-ANR15&gt;3.0.CO;2-E</pubid>
                  <pubid idtype="pmpid" link="fulltext">10323452</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B126">
            <title>
               <p>Interleukin-17 in fashion, at last: ten years after its description, its cellular source has been identified</p>
            </title>
            <aug>
               <au>
                  <snm>Miossec</snm>
                  <fnm>P</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2007</pubdate>
            <volume>56</volume>
            <fpage>2111</fpage>
            <lpage>2115</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.22733</pubid>
                  <pubid idtype="pmpid" link="fulltext">17599728</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B127">
            <title>
               <p>Production of cytokines and metalloproteinases in rheumatoid synovitis is T cell dependent</p>
            </title>
            <aug>
               <au>
                  <snm>Klimiuk</snm>
                  <fnm>PA</fnm>
               </au>
               <au>
                  <snm>Yang</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Clin Immunol</source>
            <pubdate>1999</pubdate>
            <volume>90</volume>
            <fpage>65</fpage>
            <lpage>78</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1006/clim.1998.4618</pubid>
                  <pubid idtype="pmpid" link="fulltext">9884354</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B128">
            <title>
               <p>Direct contact between T lymphocytes and human dermal fibroblasts or synoviocytes down-regulates types I and III collagen production via cell-associated cytokines</p>
            </title>
            <aug>
               <au>
                  <snm>Rezzonico</snm>
                  <fnm>R</fnm>
               </au>
               <au>
                  <snm>Burger</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Dayer</snm>
                  <fnm>JM</fnm>
               </au>
            </aug>
            <source>J Biol Chem</source>
            <pubdate>1998</pubdate>
            <volume>273</volume>
            <fpage>18720</fpage>
            <lpage>18728</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1074/jbc.273.30.18720</pubid>
                  <pubid idtype="pmpid" link="fulltext">9668044</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B129">
            <title>
               <p>T-cell contact-dependent regulation of CC and CXC chemokine production in monocytes through differential involvement of NFkappaB: implications for rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Beech</snm>
                  <fnm>JT</fnm>
               </au>
               <au>
                  <snm>Andreakos</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Ciesielski</snm>
                  <fnm>CJ</fnm>
               </au>
               <au>
                  <snm>Green</snm>
                  <fnm>P</fnm>
               </au>
               <au>
                  <snm>Foxwell</snm>
                  <fnm>BM</fnm>
               </au>
               <au>
                  <snm>Brennan</snm>
                  <fnm>FM</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2006</pubdate>
            <volume>8</volume>
            <fpage>R168</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar2077</pubid>
                  <pubid idtype="pmcid">1794512</pubid>
                  <pubid idtype="pmpid" link="fulltext">17101049</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B130">
            <title>
               <p>Fractalkine mediates T cell-dependent proliferation of synovial fibroblasts in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Sawai</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Park</snm>
                  <fnm>YW</fnm>
               </au>
               <au>
                  <snm>He</snm>
                  <fnm>X</fnm>
               </au>
               <au>
                  <snm>Goronzy</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Weyand</snm>
                  <fnm>CM</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2007</pubdate>
            <volume>56</volume>
            <fpage>3215</fpage>
            <lpage>3225</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.22919</pubid>
                  <pubid idtype="pmpid" link="fulltext">17907166</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B131">
            <title>
               <p>The role of human T-lymphocyte-monocyte contact in inflammation and tissue destruction</p>
            </title>
            <aug>
               <au>
                  <snm>Burger</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Dayer</snm>
                  <fnm>JM</fnm>
               </au>
            </aug>
            <source>Arthritis Res</source>
            <pubdate>2002</pubdate>
            <volume>4</volume>
            <issue>suppl 3</issue>
            <fpage>S169</fpage>
            <lpage>S176</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar558</pubid>
                  <pubid idtype="pmpid" link="fulltext">12110136</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B132">
            <title>
               <p>Cellular mechanisms and the role of cytokines in bone erosions in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Gravallese</snm>
                  <fnm>EM</fnm>
               </au>
               <au>
                  <snm>Goldring</snm>
                  <fnm>SR</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2000</pubdate>
            <volume>43</volume>
            <fpage>2143</fpage>
            <lpage>2151</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/1529-0131(200010)43:10&lt;2143::AID-ANR1&gt;3.0.CO;2-S</pubid>
                  <pubid idtype="pmpid" link="fulltext">11037873</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B133">
            <title>
               <p>The role and therapeutic implications of fibroblast-like synoviocytes in inflammation and cartilage erosion in rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Noss</snm>
                  <fnm>EH</fnm>
               </au>
               <au>
                  <snm>Brenner</snm>
                  <fnm>MB</fnm>
               </au>
            </aug>
            <source>Immunol Rev</source>
            <pubdate>2008</pubdate>
            <volume>223</volume>
            <fpage>252</fpage>
            <lpage>270</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1111/j.1600-065X.2008.00648.x</pubid>
                  <pubid idtype="pmpid" link="fulltext">18613841</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B134">
            <title>
               <p>Cadherin-11 in synovial lining formation and pathology in arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Lee</snm>
                  <fnm>DM</fnm>
               </au>
               <au>
                  <snm>Kiener</snm>
                  <fnm>HP</fnm>
               </au>
               <au>
                  <snm>Agarwal</snm>
                  <fnm>SK</fnm>
               </au>
               <au>
                  <snm>Noss</snm>
                  <fnm>EH</fnm>
               </au>
               <au>
                  <snm>Watts</snm>
                  <fnm>GF</fnm>
               </au>
               <au>
                  <snm>Chisaka</snm>
                  <fnm>O</fnm>
               </au>
               <au>
                  <snm>Takeichi</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Brenner</snm>
                  <fnm>MB</fnm>
               </au>
            </aug>
            <source>Science</source>
            <pubdate>2007</pubdate>
            <volume>315</volume>
            <fpage>1006</fpage>
            <lpage>1010</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1126/science.1137306</pubid>
                  <pubid idtype="pmpid" link="fulltext">17255475</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B135">
            <title>
               <p>Cadherin-11 induces rheumatoid arthritis fibroblast-like synoviocytes to form lining layers in vitro</p>
            </title>
            <aug>
               <au>
                  <snm>Kiener</snm>
                  <fnm>HP</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>DM</fnm>
               </au>
               <au>
                  <snm>Agarwal</snm>
                  <fnm>SK</fnm>
               </au>
               <au>
                  <snm>Brenner</snm>
                  <fnm>MB</fnm>
               </au>
            </aug>
            <source>Am J Pathol</source>
            <pubdate>2006</pubdate>
            <volume>168</volume>
            <fpage>1486</fpage>
            <lpage>1499</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.2353/ajpath.2006.050999</pubid>
                  <pubid idtype="pmcid">1606584</pubid>
                  <pubid idtype="pmpid" link="fulltext">16651616</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B136">
            <title>
               <p>An essential role of NF-kappaB in the 'tumor-like' phenotype of arthritic synoviocytes</p>
            </title>
            <aug>
               <au>
                  <snm>Li</snm>
                  <fnm>X</fnm>
               </au>
               <au>
                  <snm>Makarov</snm>
                  <fnm>SS</fnm>
               </au>
            </aug>
            <source>Proc Natl Acad Sci USA</source>
            <pubdate>2006</pubdate>
            <volume>103</volume>
            <fpage>17432</fpage>
            <lpage>17437</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1073/pnas.0607939103</pubid>
                  <pubid idtype="pmcid">1859946</pubid>
                  <pubid idtype="pmpid" link="fulltext">17088540</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B137">
            <title>
               <p>Selective tyrosine kinase inhibition by imatinib mesylate for the treatment of autoimmune arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Paniagua</snm>
                  <fnm>RT</fnm>
               </au>
               <au>
                  <snm>Sharpe</snm>
                  <fnm>O</fnm>
               </au>
               <au>
                  <snm>Ho</snm>
                  <fnm>PP</fnm>
               </au>
               <au>
                  <snm>Chan</snm>
                  <fnm>SM</fnm>
               </au>
               <au>
                  <snm>Chang</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Higgins</snm>
                  <fnm>JP</fnm>
               </au>
               <au>
                  <snm>Tomooka</snm>
                  <fnm>BH</fnm>
               </au>
               <au>
                  <snm>Thomas</snm>
                  <fnm>FM</fnm>
               </au>
               <au>
                  <snm>Song</snm>
                  <fnm>JJ</fnm>
               </au>
               <au>
                  <snm>Goodman</snm>
                  <fnm>SB</fnm>
               </au>
               <au>
                  <snm>Lee</snm>
                  <fnm>DM</fnm>
               </au>
               <au>
                  <snm>Genovese</snm>
                  <fnm>MC</fnm>
               </au>
               <au>
                  <snm>Utz</snm>
                  <fnm>PJ</fnm>
               </au>
               <au>
                  <snm>Steinman</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Robinson</snm>
                  <fnm>WH</fnm>
               </au>
            </aug>
            <source>J Clin Invest</source>
            <pubdate>2006</pubdate>
            <volume>116</volume>
            <fpage>2633</fpage>
            <lpage>2642</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="pmcid">1564430</pubid>
                  <pubid idtype="pmpid" link="fulltext">16981009</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B138">
            <title>
               <p>Membrane type 1 matrix metalloproteinase is a crucial promoter of synovial invasion in human rheumatoid arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Miller</snm>
                  <fnm>MC</fnm>
               </au>
               <au>
                  <snm>Manning</snm>
                  <fnm>HB</fnm>
               </au>
               <au>
                  <snm>Jain</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Troeberg</snm>
                  <fnm>L</fnm>
               </au>
               <au>
                  <snm>Dudhia</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Essex</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Sandison</snm>
                  <fnm>A</fnm>
               </au>
               <au>
                  <snm>Seiki</snm>
                  <fnm>M</fnm>
               </au>
               <au>
                  <snm>Nanchahal</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Nagase</snm>
                  <fnm>H</fnm>
               </au>
               <au>
                  <snm>Itoh</snm>
                  <fnm>Y</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2009</pubdate>
            <volume>60</volume>
            <fpage>686</fpage>
            <lpage>697</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.24331</pubid>
                  <pubid idtype="pmpid" link="fulltext">19248098</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B139">
            <title>
               <p>Retroviral gene transfer of an antisense construct against membrane type 1 matrix metalloproteinase reduces the invasiveness of rheumatoid arthritis synovial fibroblasts</p>
            </title>
            <aug>
               <au>
                  <snm>Rutkauskaite</snm>
                  <fnm>E</fnm>
               </au>
               <au>
                  <snm>Volkmer</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Shigeyama</snm>
                  <fnm>Y</fnm>
               </au>
               <au>
                  <snm>Schedel</snm>
                  <fnm>J</fnm>
               </au>
               <au>
                  <snm>Pap</snm>
                  <fnm>G</fnm>
               </au>
               <au>
                  <snm>M&#252;ller-Ladner</snm>
                  <fnm>U</fnm>
               </au>
               <au>
                  <snm>Meinecke</snm>
                  <fnm>I</fnm>
               </au>
               <au>
                  <snm>Alexander</snm>
                  <fnm>D</fnm>
               </au>
               <au>
                  <snm>Gay</snm>
                  <fnm>RE</fnm>
               </au>
               <au>
                  <snm>Drynda</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Neumann</snm>
                  <fnm>W</fnm>
               </au>
               <au>
                  <snm>Michel</snm>
                  <fnm>BA</fnm>
               </au>
               <au>
                  <snm>Aicher</snm>
                  <fnm>WK</fnm>
               </au>
               <au>
                  <snm>Gay</snm>
                  <fnm>S</fnm>
               </au>
               <au>
                  <snm>Pap</snm>
                  <fnm>T</fnm>
               </au>
            </aug>
            <source>Arthritis Rheum</source>
            <pubdate>2005</pubdate>
            <volume>52</volume>
            <fpage>2010</fpage>
            <lpage>2014</lpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1002/art.21156</pubid>
                  <pubid idtype="pmpid" link="fulltext">15986375</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
         <bibl id="B140">
            <title>
               <p>Erosive arthritis</p>
            </title>
            <aug>
               <au>
                  <snm>Schett</snm>
                  <fnm>G</fnm>
               </au>
            </aug>
            <source>Arthritis Res Ther</source>
            <pubdate>2007</pubdate>
            <volume>9</volume>
            <issue>suppl 1</issue>
            <fpage>S2</fpage>
            <xrefbib>
               <pubidlist>
                  <pubid idtype="doi">10.1186/ar2166</pubid>
                  <pubid idtype="pmcid">1924517</pubid>
                  <pubid idtype="pmpid" link="fulltext">17634141</pubid>
               </pubidlist>
            </xrefbib>
         </bibl>
      </refgrp>
   </bm>
</art>
