Visualization of individual Foxp3+ T cells during an onset and progression of aut
Visualization of individual Foxp3+ T cells during an onset and progression of aut
批准号:
7646288
负责人:
LESZEK IGNATOWICZ
金额:
$36.75万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-06-27 至 2013-05-31
关键词:
AffectAffinityAnimal OrganAntigen ReceptorsAntigensAutoantigensAutoimmune DiseasesAutoimmune ProcessAutoimmune ResponsesAutoimmunityCD4 Positive T LymphocytesCellsClonal ExpansionClone CellsDevelopmentDisabled PersonsDisease ProgressionEnvironmentEquilibriumExhibitsFrequenciesGoalsImageryImmuneIndividualMediatingMemoryModelingMouse StrainsMusOrganOutcomePeptide/MHC ComplexPlayPreventionReceptor CellRegulatory T-LymphocyteReportingResistanceRoleSpecificityStagingT-LymphocyteTestingTherapeuticThymus Glandautoreactive T cellautoreactivitybasecomplementarity-determining region 3equilibration disorderexperienceimprovedin vivo Modelpreventpublic health relevanceresearch study
中文摘要
描述(由申请人提供):本提案的主要目标是确定在胸腺中避免阴性选择的自身反应性T细胞能够击败外周中的调节性CD 4 + Foxp 3 + T细胞的情况。在我们看来,为了实现这一目标,有必要研究个体自身反应性和调节性T细胞在其自然环境中的特征。此外,这些细胞必须表达对自身和非自身抗原都具有特异性的不同抗原受体(TCR)。为了这个目的,我们最近建立了一个独特的体内模型,所有的T细胞表达的多克隆,但限制的TCR(TCRmini小鼠)的库。在该模型中,TCR的CDR 3区可用于追踪自身免疫性疾病的不同阶段中的单个原始T细胞、效应T细胞和调节T细胞。现在,我们还报道了我们已经开发了两种体内模型,其中表达该TCR微库的T细胞产生全身性或器官特异性自身免疫。随后,我们将研究抗原特异性自身反应性和调节性Foxp 3 + CD 4 + T细胞克隆之间的平衡如何被破坏,导致自身免疫反应的发生。在具体目标1中,我们建议确定天然和适应性TR细胞在自身免疫性疾病的发作和进展过程中是否发挥独特的作用。我们还假设,虽然一些天然TR细胞表达自身反应性TCR,并可能失去Foxp 3表达,这些残疾的TR细胞在天然自身免疫反应的参与是微不足道的。我们的第二个特定目标将检查自身反应性T细胞的克隆逃逸是否由少数对自身MHC/肽复合物具有较高TCR亲和力的克隆驱动,或者是否由自身反应性T细胞固有的较高频率引起。我们的目标也将揭示,如果个别自身反应性T细胞克隆不同,他们的抵抗抑制TR细胞。在我们的第三个具体目标中,我们将研究与未经历抗原的Foxp 3+细胞相比,经历抗原的Foxp 3 + TR细胞是否表现出改善的抑制能力,以及它们的TCR库是否比在未经历抗原的Foxp 3+细胞上发现的TCR库更寡克隆。公共卫生相关性本提案的重点是研究天然和适应性Foxp 3+调节性T淋巴细胞诱导耐受的机制。这些调节性T淋巴细胞监督其他免疫细胞的功能,并控制自身反应性T细胞,防止自身免疫的发生。更好地理解自身反应性细胞利用来覆盖CD 4 + Foxp 3+细胞的调节功能的机制对于开发更好的治疗策略来治疗自身免疫性疾病至关重要。
英文摘要
DESCRIPTION (provided by applicant): The main goal of this proposal is to determine the circumstances under which autoreactive T cells that have avoided negative selection in the thymus can defeat regulatory CD4+Foxp3+ T cells in the periphery. In our opinion, to achieve this goal it is necessary to study the features of individual autoreactive and regulatory T cells in their natural environment. In addition, these cells must express different antigen receptors (TCRs) specific for both self and non-self antigens. For this purpose, we have recently established a distinctive in vivo model where all T cells express a polyclonal but restricted repertoire of TCRs (TCRmini mice). In this model the CDR3 regions of TCRs can be used to trace individual naove, effector, and regulatory T cells in different stages of autoimmune disease. Now we also report that we have developed two in vivo models where T cells expressing this TCR mini- repertoire develop systemic or organ-specific autoimmunity. Subsequently, our proposal will investigate how the balance between antigen specific autoreactive and regulatory Foxp3+ CD4+ T cells clones can be destroyed, leading to the onset of autoimmune responses. In Specific Aim 1 we propose to determine if natural and adaptive TR cells play a distinctive role during onset and progression of autoimmune disease. We also hypothesize that though some natural TR cells express autoreactive TCRs and may lose Foxp3 expression the participation of these disabled TR cells in natural autoimmune responses is insignificant. Our second Specific Aim will examine if clonal escape of autoreactive T cells is driven by a few clones with higher TCR affinity for self MHC/peptide complexes or is caused by intrinsically higher frequency of autoreactive T cells. Our objective will also be to reveal if individual autoreactive T cell clones differ in their resistance to suppression by TR cells. In our third Specific Aim we will investigate if antigen-experienced Foxp3+ TR cells exhibit improved suppressor ability compared to naove Foxp3+ cells, and whether their TCR repertoire is more oligoclonal than the TCR repertoire found on the antigen-inexperienced Foxp3+ cells. PUBLIC HEALTH RELEVANCE This proposal focuses on investigating the mechanisms of tolerance induction by natural and adaptive Foxp3+ regulatory T lymphocytes. These regulatory T lymphocytes supervise the function of other immune cells and control autoreactive T cells preventing onset of autoimmunity. Better understanding of the mechanisms that autoreactive cells utilize to override regulatory function of CD4+Foxp3+ cells is critical for the development of better therapeutic strategies to treat autoimmune diseases.
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会议论文
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海外基金