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信号效应器的时间分层驱动毛囊干细胞谱系进展中的染色质重塑。

Temporal Layering of Signaling Effectors Drives Chromatin Remodeling during Hair Follicle Stem Cell Lineage Progression.

机构信息

Robin Neustein Laboratory of Mammalian Development and Cell Biology, Howard Hughes Medical Institute, The Rockefeller University, New York, NY 10065, USA.

Department of Genetics, Albert Einstein College of Medicine, Bronx, NY 10461, USA.

出版信息

Cell Stem Cell. 2018 Mar 1;22(3):398-413.e7. doi: 10.1016/j.stem.2017.12.004. Epub 2018 Jan 11.

Abstract

Tissue regeneration relies on resident stem cells (SCs), whose activity and lineage choices are influenced by the microenvironment. Exploiting the synchronized, cyclical bouts of tissue regeneration in hair follicles (HFs), we investigate how microenvironment dynamics shape the emergence of stem cell lineages. Employing epigenetic and ChIP-seq profiling, we uncover how signal-dependent transcription factors couple spatiotemporal cues to chromatin dynamics, thereby choreographing stem cell lineages. Using enhancer-driven reporters, mutagenesis, and genetics, we show that simultaneous BMP-inhibitory and WNT signals set the stage for lineage choices by establishing chromatin platforms permissive for diversification. Mechanistically, when binding of BMP effector pSMAD1 is relieved, enhancers driving HF-stem cell master regulators are silenced. Concomitantly, multipotent, lineage-fated enhancers silent in HF-stem cells become activated by exchanging WNT effectors TCF3/4 for LEF1. Throughout regeneration, lineage enhancers continue reliance upon LEF1 but then achieve specificity by accommodating additional incoming signaling effectors. Barriers to progenitor plasticity increase when diverse, signal-sensitive transcription factors shape LEF1-regulated enhancer dynamics.

摘要

组织再生依赖于驻留干细胞(SCs),其活性和谱系选择受微环境影响。利用毛囊(HFs)中组织再生的同步、周期性发作,我们研究了微环境动态如何塑造干细胞谱系的出现。通过表观遗传和 ChIP-seq 分析,我们揭示了信号依赖性转录因子如何将时空线索与染色质动态联系起来,从而协调干细胞谱系。使用增强子驱动的报告基因、诱变和遗传学,我们表明,同时的 BMP 抑制和 WNT 信号通过建立允许多样化的染色质平台为谱系选择奠定基础。在机制上,当 BMP 效应物 pSMAD1 的结合被解除时,驱动 HF-干细胞主调控因子的增强子被沉默。同时,HF-干细胞中沉默的多能性、谱系定向增强子通过将 WNT 效应物 TCF3/4 交换为 LEF1 而被激活。在整个再生过程中,谱系增强子继续依赖于 LEF1,但随后通过容纳额外的传入信号转导效应物来实现特异性。当各种信号敏感转录因子塑造 LEF1 调节的增强子动态时,祖细胞可塑性的障碍会增加。

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