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中文摘要
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描述(由申请人提供):T细胞在对入侵病原体和癌症的适应性抗原特异性免疫应答中发挥核心作用,同时在很大程度上避免自身反应性(自身免疫性)。这些细胞功能由T细胞受体(TCR)与肽-MHC(pMHC)复合物的相互作用介导,其导致通过TCR-CD 3信号传导复合物的信号传导。已经产生了大量的证据来理解TCR活化的分子机制,并且证据支持TCR在识别pMHC时经历构象变化。尽管如此,TCR识别中的分子和结构事件如何转化为细胞内信号传导的差异仍然是一个谜。该应用的中心假设是,配体结合后TCR中诱导的构象变化可以跨膜传递,以暴露CD 3 + T细胞中的胞质结构域。链,并且构象变化的差异负责T细胞信号传导中的定量和/或定性差异。为了验证我们的假设,我们将结合联合收割机X射线晶体学,核磁共振(NMR)和一种新的荧光能量转移(FRET)分析的变化时,结合不同的pMHC的TCR的整体结构组织和构象。我们期望这些研究将提供深入了解配体如何诱导pMHC-TCR界面处的构象变化移位到CD 3信号传导复合物以影响T细胞活化结果的分子机制,其灵敏度和分辨率在以前是不可能的。增加对蛋白质-蛋白质相互作用的结构生物物理学和结构经历构象变化的倾向的理解将是至关重要的,特别是在涉及细胞信号传导的受体的情况下。此外,这些生物物理学研究将提供对蛋白质结构和动力学的基本见解,解释这些特征如何用于特定的信号传导目的以及蛋白质如何在不同的细胞环境中发挥作用。这些结果有望引起对受体信号传导感兴趣的科学界的兴趣。此外,这些基础知识最终将使我们能够设计多肽或其他试剂,用于监测和操纵细胞信号传导事件,以指导癌症和自身免疫性疾病的治疗和疫苗的设计,这些疾病困扰着成千上万的人。
英文摘要
DESCRIPTION (provided by applicant): T cells play a central role in the adaptive antigen-specific immune response to invading pathogens and cancer while largely avoiding self-reactivity (autoimmunity). These cellular functions are mediated by interaction of the T-cell receptor (TCR) with peptide-MHC (pMHC) complexes which leads to signaling through the TCR-CD3 signaling complex. A great body of evidence has been generated to understand the molecular mechanisms of TCR-activation and evidence supports that the TCR undergoes conformational change upon recognition of pMHC. Still, it remains an enigma how molecular and structural events in TCR-recognition translate into differences in intracellular signaling. The central hypothesis of this application is that conformational changes induced in the TCR upon ligand binding can be transmitted across the membrane to expose cytoplasmic domains in the CD3??? chains, and that differences in conformational changes are responsible for quantitative and/or qualitative differences in T-cell signaling. To test our hypothesis we will combine X-ray crystallography, nuclear magnetic resonance (NMR) and a novel fluorescence energy transfer (FRET) assay to analyze the changes in the overall structural organization and conformation of TCR when binding to different pMHC. We expect that these studies will provide insight into the molecular mechanism of how ligand induced conformational changes at the pMHC-TCR interface translocate to the CD3 signaling complex to influence T-cell activation outcomes with a sensitivity and resolution that have not been possible before. An increased understanding of the structural biophysics of protein-protein interactions and of the propensity of structures to undergo conformational change will be of critical importance, particularly in the case of receptors involved in cell signaling. Furthermore, such biophysical studies will provide fundamental insights into protein structure and dynamics, explain how these features are used for specific signaling purposes and how the proteins function in distinct cellular environments. These results are expected to be of interest for the scientific community interested in receptor signaling. In addition, this basic knowledge will eventually allow us to design polypeptides or other agents that can be used to monitor and manipulate cell signaling events to guide the design of therapeutics and vaccines for cancer and autoimmune disease which afflict thousands of people.
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T-cell intrinsic mechanisms of resistance to PD-1 checkpoint blockade
T-cell intrinsic mechanisms of resistance to PD-1 checkpoint blockade
T-cell intrinsic mechanisms of resistance to PD-1 checkpoint blockade
T-cell intrinsic mechanisms of resistance to PD-1 checkpoint blockade
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Autoimmune diseases therapies: variations on the microbiome in rheumatoid arthritis