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组合转录因子结合编码前脑γ-氨基丁酸能神经发生的顺式调控线路。

Combinatorial transcription factor binding encodes cis-regulatory wiring of forebrain GABAergic neurogenesis.

作者信息

Catta-Preta Rinaldo, Lindtner Susan, Ypsilanti Athena, Price James, Abnousi Armen, Su-Feher Linda, Wang Yurong, Juric Ivan, Jones Ian R, Akiyama Jennifer A, Hu Ming, Shen Yin, Visel Axel, Pennacchio Len A, Dickel Diane, Rubenstein John L R, Nord Alex S

机构信息

Department of Neurobiology, Physiology and Behavior, and Department of Psychiatry and Behavioral Sciences, University of California, Davis, Davis, CA 95618, USA.

Current Address: Department of Genetics, Blavatnik Institute, Harvard Medical School, Boston, MA 02115, USA.

出版信息

bioRxiv. 2023 Jun 28:2023.06.28.546894. doi: 10.1101/2023.06.28.546894.

Abstract

Transcription factors (TFs) bind combinatorially to genomic cis-regulatory elements (cREs), orchestrating transcription programs. While studies of chromatin state and chromosomal interactions have revealed dynamic neurodevelopmental cRE landscapes, parallel understanding of the underlying TF binding lags. To elucidate the combinatorial TF-cRE interactions driving mouse basal ganglia development, we integrated ChIP-seq for twelve TFs, H3K4me3-associated enhancer-promoter interactions, chromatin and transcriptional state, and transgenic enhancer assays. We identified TF-cREs modules with distinct chromatin features and enhancer activity that have complementary roles driving GABAergic neurogenesis and suppressing other developmental fates. While the majority of distal cREs were bound by one or two TFs, a small proportion were extensively bound, and these enhancers also exhibited exceptional evolutionary conservation, motif density, and complex chromosomal interactions. Our results provide new insights into how modules of combinatorial TF-cRE interactions activate and repress developmental expression programs and demonstrate the value of TF binding data in modeling gene regulatory wiring.

摘要

转录因子(TFs)通过组合方式与基因组顺式调控元件(cREs)结合,从而协调转录程序。虽然对染色质状态和染色体相互作用的研究揭示了动态的神经发育cRE图谱,但对潜在TF结合的平行理解却滞后了。为了阐明驱动小鼠基底神经节发育的组合TF-cRE相互作用,我们整合了针对12种TF的ChIP-seq、H3K4me3相关的增强子-启动子相互作用、染色质和转录状态以及转基因增强子分析。我们鉴定出具有不同染色质特征和增强子活性的TF-cRE模块,它们在驱动GABA能神经发生和抑制其他发育命运方面具有互补作用。虽然大多数远端cREs被一两种TF结合,但一小部分被广泛结合,并且这些增强子还表现出异常的进化保守性、基序密度和复杂的染色体相互作用。我们的结果为组合TF-cRE相互作用模块如何激活和抑制发育表达程序提供了新的见解,并证明了TF结合数据在构建基因调控线路模型中的价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/afa5/10327028/dfe15948b207/nihpp-2023.06.28.546894v1-f0001.jpg

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