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本文引用的文献

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Developmental and cellular age direct conversion of CD4+ T cells into RORγ+ or Helios+ colon Treg cells.发育和细胞年龄指导 CD4+T 细胞向 RORγ+或 Helios+结肠 Treg 细胞的直接转化。
J Exp Med. 2020 Jan 6;217(1). doi: 10.1084/jem.20190428.
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Reporters of TCR signaling identify arthritogenic T cells in murine and human autoimmune arthritis.TCR 信号转导的研究鉴定了鼠类和人类自身免疫性关节炎中的致关节炎 T 细胞。
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3
Targeting the CBM complex causes T cells to prime tumours for immune checkpoint therapy.靶向 CBM 复合物可使 T 细胞为免疫检查点治疗诱导肿瘤。
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Molecular Mechanisms Directing PRC2 Recruitment and H3K27 Methylation.介导 PRC2 募集和 H3K27 甲基化的分子机制。
Mol Cell. 2019 Apr 4;74(1):8-18. doi: 10.1016/j.molcel.2019.03.011.
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Nemo-like Kinase Drives Foxp3 Stability and Is Critical for Maintenance of Immune Tolerance by Regulatory T Cells.Nemo 样激酶驱动 Foxp3 稳定性,对调节性 T 细胞维持免疫耐受至关重要。
Cell Rep. 2019 Mar 26;26(13):3600-3612.e6. doi: 10.1016/j.celrep.2019.02.087.
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Regulatory T cell adaptation in the intestine and skin.肠道和皮肤中调节性 T 细胞的适应性。
Nat Immunol. 2019 Apr;20(4):386-396. doi: 10.1038/s41590-019-0351-z. Epub 2019 Mar 19.
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Transcription factor Foxp1 regulates Foxp3 chromatin binding and coordinates regulatory T cell function.转录因子 Foxp1 调节 Foxp3 染色质结合并协调调节性 T 细胞功能。
Nat Immunol. 2019 Feb;20(2):232-242. doi: 10.1038/s41590-018-0291-z. Epub 2019 Jan 14.
8
JunB regulates homeostasis and suppressive functions of effector regulatory T cells.JunB 调节效应调节性 T 细胞的稳态和抑制功能。
Nat Commun. 2018 Dec 17;9(1):5344. doi: 10.1038/s41467-018-07735-4.
9
Molecular Markers Distinguishing T Cell Subtypes With TSDR Strand-Bias Methylation.具有 TSDR 链偏置甲基化的 T 细胞亚型的分子标记物。
Front Immunol. 2018 Nov 5;9:2540. doi: 10.3389/fimmu.2018.02540. eCollection 2018.
10
From stability to dynamics: understanding molecular mechanisms of regulatory T cells through Foxp3 transcriptional dynamics.从稳定性到动态性:通过 Foxp3 转录动态理解调节性 T 细胞的分子机制。
Clin Exp Immunol. 2019 Jul;197(1):14-23. doi: 10.1111/cei.13194. Epub 2018 Sep 17.

调控性 T 细胞分化和功能的 T 细胞受体信号和 Foxp3 转录因子复合物。

Control of regulatory T-cell differentiation and function by T-cell receptor signalling and Foxp3 transcription factor complexes.

机构信息

Department of Life Sciences, Imperial College London, London, UK.

出版信息

Immunology. 2020 May;160(1):24-37. doi: 10.1111/imm.13178. Epub 2020 Mar 9.

DOI:10.1111/imm.13178
PMID:32022254
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7160660/
Abstract

The transcription factor Foxp3 controls the differentiation and function of regulatory T-cells (Treg). Studies in the past decades identified numerous Foxp3-interacting protein partners. However, it is still not clear how Foxp3 produces the Treg-type transcriptomic landscape through cooperating with its partners. Here I show the current understanding of how Foxp3 transcription factor complexes regulate the differentiation, maintenance and functional maturation of Treg. Importantly, T-cell receptor (TCR) signalling plays central roles in Treg differentiation and Foxp3-mediated gene regulation. Differentiating Treg will have recognized their cognate antigens and received TCR signals before initiating Foxp3 transcription, which is triggered by TCR-induced transcription factors including NFAT, AP-1 and NF-κB. Once expressed, Foxp3 seizes TCR signal-induced transcriptional and epigenetic mechanisms through interacting with AML1/Runx1 and NFAT. Thus, Foxp3 modifies gene expression dynamics of TCR-induced genes, which constitute cardinal mechanisms for Treg-mediated immune suppression. Next, I discuss the following key topics, proposing new mechanistic models for Foxp3-mediated gene regulation: (i) how Foxp3 transcription is induced and maintained by the Foxp3-inducing enhanceosome and the Foxp3 autoregulatory transcription factor complex; (ii) molecular mechanisms for effector Treg differentiation (i.e. Treg maturation); (iii) how Foxp3 activates or represses its target genes through recruiting coactivators and corepressors; (iv) the 'decision-making' Foxp3-containing transcription factor complex for Th17 and Treg differentiation; and (v) the roles of post-translational modification in Foxp3 regulation. Thus, this article provides cutting-edge understanding of molecular biology of Foxp3 and Treg, integrating findings by biochemical and genomic studies.

摘要

转录因子 Foxp3 控制调节性 T 细胞(Treg)的分化和功能。过去几十年的研究确定了许多 Foxp3 相互作用的蛋白伙伴。然而,Foxp3 通过与其伙伴合作产生 Treg 型转录组景观的机制仍不清楚。在这里,我展示了当前对 Foxp3 转录因子复合物如何调节 Treg 的分化、维持和功能成熟的理解。重要的是,T 细胞受体(TCR)信号在 Treg 分化和 Foxp3 介导的基因调控中发挥核心作用。分化的 Treg 在启动 Foxp3 转录之前,已经识别出其同源抗原并接收到 TCR 信号,这是由 TCR 诱导的转录因子(包括 NFAT、AP-1 和 NF-κB)触发的。一旦表达,Foxp3 通过与 AML1/Runx1 和 NFAT 相互作用,利用 TCR 诱导的转录和表观遗传机制。因此,Foxp3 修改了 TCR 诱导基因的表达动力学,这是 Treg 介导免疫抑制的主要机制。接下来,我将讨论以下关键主题,提出 Foxp3 介导基因调控的新机制模型:(i)Foxp3 转录如何被 Foxp3 诱导增强子和 Foxp3 自身转录因子复合物诱导和维持;(ii)效应性 Treg 分化(即 Treg 成熟)的分子机制;(iii)Foxp3 通过招募共激活因子和核心抑制因子来激活或抑制其靶基因的机制;(iv)用于 Th17 和 Treg 分化的“决策”Foxp3 包含转录因子复合物;以及(v)翻译后修饰在 Foxp3 调节中的作用。因此,本文提供了对 Foxp3 和 Treg 分子生物学的最新理解,整合了生化和基因组研究的发现。