超级增能器解剖图

3区 医学 Q2 Medicine Advances in Immunology Pub Date : 2024-01-01 Epub Date: 2024-08-31 DOI:10.1016/bs.ai.2024.08.001
Sunkyung Kim, Tian-Tian Liu, Feiya Ou, Theresa L Murphy, Kenneth M Murphy
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引用次数: 0

摘要

干扰素调节因子-8(IRF8)是一类经典树突状细胞(cDC1)亚群的系决定性转录因子,是浆细胞树突状细胞的终端选择因子,对单核细胞的功能非常重要。对 Irf8 基因调控的研究发现,在骨髓祖细胞的发育过程中,有几个增强子控制着 Irf8 的活性,这些增强子在不同的发育阶段精确地调控着 Irf8 的表达。每个增强子对每个阶段表达的不同转录因子做出反应。IRF8 首先在形成单核细胞树突状细胞祖细胞(MDP)的早期祖细胞中表达,以响应作用于 Irf8 +56 kb 增强子的转录因子 CCAAT/增强子结合蛋白α(C/EBPα)的诱导。当 MDP 进入普通树突状细胞祖细胞(CDP)时,IRF8 水平会进一步升高,以响应 Irf8 +41 kb 增强子上的 E 蛋白活性。当 Nfil3 诱导 CDP 导致 cDC1 祖细胞的规范化时,BATF3 的突然诱导会形成 JUN/BATF3/IRF8 异源三聚体,从而激活 Irf8 +32 kb 增强子,使 Irf8 在整个 cDC1 生命周期中持续自激活。这些增强子中每一个的缺失都揭示了其激活的阶段依赖性。令人惊讶的是,对每种增强子缺失组合的复合杂合子的研究发现,每一个后续增强子的激活都需要前一个增强子的成功激活,这是一种严格的顺式依赖机制。增强子激活的成功进展经过微调,以改变后续增强子对下一阶段发育中活跃因子的功能可及性。这些现象的分子基础尚不清楚,但可能对更广泛的发育背景下的基因组调控产生影响。
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Anatomy of a superenhancer.

Interferon regulatory factor-8 (IRF8) is the lineage determining transcription factor for the type one classical dendritic cell (cDC1) subset, a terminal selector for plasmacytoid dendritic cells and important for the function of monocytes. Studies of Irf8 gene regulation have identified several enhancers controlling its activity during development of progenitors in the bone marrow that precisely regulate expression at distinct developmental stages. Each enhancer responds to distinct transcription factors that are expressed at each stage. IRF8 is first expressed in early progenitors that form the monocyte dendritic cell progenitor (MDP) in response to induction of the transcription factor CCAAT/enhancer-binding protein alpha (C/EBPα) acting at the Irf8 +56 kb enhancer. IRF8 levels increase further as the MDP transits into the common dendritic cell progenitor (CDP) in response to E protein activity at the Irf8 +41 kb enhancer. Upon Nfil3-induction in CDPs leading to specification of the cDC1 progenitor, abrupt induction of BATF3 forms the JUN/BATF3/IRF8 heterotrimer that activates the Irf8 +32 kb enhancer that sustains Irf8 autoactivation throughout the cDC1 lifetime. Deletions of each of these enhancers has revealed their stage dependent activation. Surprisingly, studies of compound heterozygotes for each combination of enhancer deletions revealed that activation of each subsequent enhancer requires the successful activation of the previous enhancer in strictly cis-dependent mechanism. Successful progression of enhancer activation is finely tuned to alter the functional accessibility of subsequent enhancers to factors active in the next stage of development. The molecular basis for these phenomenon is still obscure but could have implications for genomic regulation in a broader developmental context.

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来源期刊
Advances in Immunology
Advances in Immunology 医学-免疫学
CiteScore
9.90
自引率
0.00%
发文量
13
期刊介绍: Advances in Immunology has provided students and researchers with the latest information in Immunology for over 50 years. You can continue to rely on Advances in Immunology to provide you with critical reviews that examine subjects of vital importance to the field through summary and evaluation of current knowledge and research. The articles stress fundamental concepts, but also evaluate the experimental approaches.
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