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本文引用的文献

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Acquisition of a functional T cell receptor during T lymphocyte development is enforced by HEB and E2A transcription factors.在T淋巴细胞发育过程中,功能性T细胞受体的获得是由HEB和E2A转录因子强制实现的。
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Antagonistic interactions between Ikaros and the chromatin remodeler Mi-2beta determine silencer activity and Cd4 gene expression.Ikaro与染色质重塑因子Mi-2β之间的拮抗相互作用决定沉默子活性和Cd4基因表达。
Immunity. 2007 Nov;27(5):723-34. doi: 10.1016/j.immuni.2007.09.008. Epub 2007 Nov 1.
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The role of the Runx transcription factors in thymocyte differentiation and in homeostasis of naive T cells.Runx转录因子在胸腺细胞分化及初始T细胞稳态中的作用。
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Repression of interleukin-4 in T helper type 1 cells by Runx/Cbf beta binding to the Il4 silencer.Runx/Cbfβ与Il4沉默子结合对1型辅助性T细胞中白细胞介素-4的抑制作用
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T cell development: better living through chromatin.T细胞发育:通过染色质实现更优生存。
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Foxp3 controls regulatory T-cell function by interacting with AML1/Runx1.Foxp3通过与AML1/Runx1相互作用来控制调节性T细胞的功能。
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The control of histone lysine methylation in epigenetic regulation.表观遗传调控中组蛋白赖氨酸甲基化的控制
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Histone modification and the control of heterochromatic gene silencing in Drosophila.组蛋白修饰与果蝇中异染色质基因沉默的调控
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Transcriptional regulation of CD4 gene expression by T cell factor-1/beta-catenin pathway.T细胞因子-1/β-连环蛋白途径对CD4基因表达的转录调控
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Selective and antagonistic functions of SWI/SNF and Mi-2beta nucleosome remodeling complexes during an inflammatory response.SWI/SNF和Mi-2β核小体重塑复合物在炎症反应中的选择性和拮抗性功能
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CD4基因座的核蛋白结构:对T细胞发育过程中CD4调节机制的影响。

Nucleoprotein structure of the CD4 locus: implications for the mechanisms underlying CD4 regulation during T cell development.

作者信息

Yu Ming, Wan Mimi, Zhang Jianmin, Wu Jie, Khatri Rohini, Chi Tian

机构信息

Department of Immunobiology, Yale University Medical School, New Haven, CT 06520, USA.

出版信息

Proc Natl Acad Sci U S A. 2008 Mar 11;105(10):3873-8. doi: 10.1073/pnas.0800810105. Epub 2008 Mar 5.

DOI:10.1073/pnas.0800810105
PMID:18322012
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2268827/
Abstract

The CD4 gene is regulated in a stage-specific manner during T cell development, being repressed in CD4(-)CD8(-) double-negative (DN) and CD8 cells, but expressed in CD4(+)CD8(+) double-positive (DP) and CD4 cells. Furthermore, the expression/repression pattern is reversible in developing (DN and DP) thymocytes, but irreversible in mature (CD4 and CD8) T cells. Here, we explored the molecular mechanisms underlying this complex mode of regulation by examining the nucleoprotein structure of the CD4 locus throughout T cell development and in DN cells lacking the CD4 silencer. In DN cells, the CD4 enhancer is preloaded with multiple transcription activators, but p300 recruitment is impaired by the silencer that is associated with the repressor Runx1. DP cells achieve high-level CD4 expression via a combination of CD4 derepression and true activation, but Runx1 remains bound to the silencer that retains an open chromatin configuration. In CD4 cells, Runx1 dissociates from the silencer that has become less accessible, and CD4 transcription appears to be achieved via a mechanism distinct from that operating in DP cells. In CD8 cells, the CD4 promoter becomes incorporated into heterochromatin-like structure. Our data shed light on the molecular basis of CD4 regulation and provide a conceptual framework for understanding how the same regulatory elements can mediate both reversible and irreversible CD4 regulation.

摘要

CD4基因在T细胞发育过程中以阶段特异性方式受到调控,在CD4(-)CD8(-)双阴性(DN)和CD8细胞中受到抑制,但在CD4(+)CD8(+)双阳性(DP)和CD4细胞中表达。此外,这种表达/抑制模式在发育中的(DN和DP)胸腺细胞中是可逆的,但在成熟的(CD4和CD8)T细胞中是不可逆的。在这里,我们通过检查整个T细胞发育过程中以及缺乏CD4沉默子的DN细胞中CD4基因座的核蛋白结构,探索了这种复杂调控模式背后的分子机制。在DN细胞中,CD4增强子预先加载了多种转录激活因子,但p300的募集受到与阻遏物Runx1相关的沉默子的损害。DP细胞通过CD4去抑制和真正激活的组合实现高水平的CD4表达,但Runx1仍然与保持开放染色质构型的沉默子结合。在CD4细胞中,Runx1从变得难以接近的沉默子上解离,并且CD4转录似乎是通过一种不同于DP细胞中运作的机制实现的。在CD8细胞中,CD4启动子被纳入异染色质样结构。我们的数据揭示了CD4调控的分子基础,并为理解相同的调控元件如何介导可逆和不可逆的CD4调控提供了一个概念框架。