REGULATION OF AUTOIMMUNITY WITH T CELL RECEPTOR PEPTIDES
REGULATION OF AUTOIMMUNITY WITH T CELL RECEPTOR PEPTIDES
批准号:
7099293
负责人:
ARTHUR A. VANDENBARK
金额:
$35.07万
依托单位国家:
美国
项目类别:
财政年份:
1986
资助国家:
美国
项目状态:
已结题
起止时间:
1986-08-01 至 2011-03-31
关键词:
T cell receptoractive immunizationantireceptor antibodyautoimmunityclinical researchclone cellshelper T lymphocytehuman subjecthuman therapy evaluationimmunoregulationinterferon gammainterleukin 10interleukin 4leukocyte activation /transformationmonoclonal antibodymultiple sclerosispolymerase chain reactionrecombinant proteins
中文摘要
描述(由申请人提供):T细胞对抗原性自身TCR序列的识别构成了一种独特的外周自我调节机制,用于限制Th1细胞针对组织特异性抗原(如髓鞘蛋白)介导的炎症反应。从我们使用TCR多肽接种多发性硬化症(MS)患者的临床试验中获得的数据提出了关于TCR特异性T细胞的来源和作用机制的关键问题,这将需要回到动物模型。具体地说,我们观察到TCR反应性T细胞可能获得与CD4+CD25+调节性T细胞(Treg)相关的特性,除了先前已知的通过释放IL-10调节Th1细胞的能力外,具有类似Th2或TR1细胞的特性。这些观察提出了一个根本的问题,即TCR反应细胞是否代表单一的独特调节谱系,或者携带自身TCR决定因素特异性T细胞受体的T细胞是否可以根据其微环境分化为不同类型的调节性或效应性T细胞。这个问题具有重要的意义,因为在后一种情况下,自身免疫性疾病过程本身可能会导致与健康期间不同的TCR反应性T细胞亚型的分布,对调节功能的影响未知。因此,我们提出的假设是,TCR特异性T细胞代表一种独特的自身反应细胞谱系,介导一系列依赖于胸腺和外周分化途径的调节效应。为了解决这一假设,我们建议:1)确定CD4+TCR特异性T细胞的发育途径;2)确定TCR反应性T细胞抑制致病T细胞和旁观者T细胞并预防实验性自身免疫性脑脊髓炎(EAE)的调控机制;3)评估HC和MS患者接种前后TCR反应性T细胞类型的频谱及其对免疫功能的影响。我们将利用人源化的TG小鼠,表达人类白细胞抗原DR2,已知的MS危险因素,这些小鼠对髓鞘少突胶质细胞糖蛋白-35-55肽诱导的EAE高度易感。此外,为了更有效地跟踪致病T细胞并评估集中的抗TCR反应的诱导,我们将利用也表达髓鞘碱性蛋白(MBP)-85-99肽的人TCR的DR2小鼠。这些DR2/TCR+小鼠对MBP-85-99肽诱导的EAE高度敏感,我们进一步建议通过培育DR2/CIITA-TG小鼠来模仿人类T细胞表达自身TCR决定簇,其中T细胞被编程为过度表达II类分子。在这些小鼠和Treg相关Foxp3基因缺陷小鼠中的研究对于确定不同TCR反应亚型保护功能的差异至关重要。然后,动物模型的结果将被翻译回人类捐赠者,以评估未免疫的HC和TCR疫苗接种的MS患者中存在的TCR亚型的分布,以建立与临床益处相关的主要模式。
英文摘要
DESCRIPTION (provided by applicant): T cell recognition of antigenic self-TCR sequences constitutes a distinct peripheral autoregulatory mechanism for limiting inflammatory reactions mediated by Th1 cells directed at tissue-specific antigens such as myelin proteins. Data obtained from our clinical trials using TCR peptides to vaccinate patients with multiple sclerosis (MS) have raised crucial questions regarding the origin and mechanism of action of TCR- specific T cells that will require a return to animal models. Specifically, we have observed that TCR-reactive T cells may acquire properties associated with CD4+CD25+ regulatory T cells (Treg), in addition to their previously documented ability to regulate Th1 cells through the release of IL-10, with properties similar to Th2 or Tr1 cells. These observations raise the fundamental question of whether the TCR-reactive cells represent a single distinct regulatory lineage or whether T cells bearing T cell receptors specific for self TCR determinants can differentiate into different types of regulatory or effector T cells according to their micro- environment. This question has important implications because in the latter case, the autoimmune disease process itself might direct a different distribution of TCR-reactive T cell subtypes than occurs during health, with unknown effects on regulatory function. We thus propose the hypothesis that TCR-specific T cells represent a unique lineage of autoreactive cells that mediate a spectrum of regulatory effects that are dependent on both thymic and peripheral differentiation pathways. To address this hypothesis, we propose to: 1) Determine what are the developmental pathways for CD4+ TCR-specific T cells; 2) Determine what are the governing mechanisms by which TCR-reactive T cells inhibit pathogenic and bystander T cells and prevent experimental autoimmune encephalomyelitis (EAE); and 3) Evaluate the spectrum of TCR-reactive T cell types in HC and in MS patients before and after vaccination and their effects on immune function. We will utilize humanized Tg mice that express HLA-DR2, a known risk factor for MS, that are highly susceptible to EAE induced with myelin oligodendrocyte glycoprotein (MOG)-35-55 peptide. Moreover, in order to more effectively follow pathogenic T cells and evaluate induction of a focused anti-TCR response, we will utilize DR2 mice that also express a human TCR specific for myelin basic protein (MBP)-85-99 peptide. These DR2/TCR+ mice are highly susceptible to EAE induced with the MBP-85-99 peptide, and we further propose to mimic human T cell presentation of self-TCR determinants by producing DR2/CIITA-Tg mice, in which T cells are programmed to over-express class II molecules. Studies in these mice and in mice deficient in the Treg associated Foxp3 gene are crucial for a definitive determination of differences in the protective function of various TCR-reactive subtypes. Results from the animal models will then be translated back to human donors to evaluate the distribution of TCR subtypes present in un-immunized HC and TCR vaccinated MS patients to establish predominant patterns that are associated with clinical benefit.
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科研奖励(0)
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