核心转录调控回路协调角膜上皮稳态。

Core transcription regulatory circuitry orchestrates corneal epithelial homeostasis.

机构信息

State Key Laboratory of Ophthalmology, Zhongshan Ophthalmic Center, Sun Yat-sen University, 510060, Guangzhou, China.

Key Laboratory of Epigenetics and Metabolism, Ministry of Science and Technology, Institutes of Biomedical Sciences; Liver Cancer Institute, Zhongshan Hospital, Fudan University, 200032, Shanghai, China.

出版信息

Nat Commun. 2021 Jan 18;12(1):420. doi: 10.1038/s41467-020-20713-z.

Abstract

Adult stem cell identity, plasticity, and homeostasis are precisely orchestrated by lineage-restricted epigenetic and transcriptional regulatory networks. Here, by integrating super-enhancer and chromatin accessibility landscapes, we delineate core transcription regulatory circuitries (CRCs) of limbal stem/progenitor cells (LSCs) and find that RUNX1 and SMAD3 are required for maintenance of corneal epithelial identity and homeostasis. RUNX1 or SMAD3 depletion inhibits PAX6 and induces LSCs to differentiate into epidermal-like epithelial cells. RUNX1, PAX6, and SMAD3 (RPS) interact with each other and synergistically establish a CRC to govern the lineage-specific cis-regulatory atlas. Moreover, RUNX1 shapes LSC chromatin architecture via modulating H3K27ac deposition. Disturbance of RPS cooperation results in cell identity switching and dysfunction of the corneal epithelium, which is strongly linked to various human corneal diseases. Our work highlights CRC TF cooperativity for establishment of stem cell identity and lineage commitment, and provides comprehensive regulatory principles for human stratified epithelial homeostasis and pathogenesis.

摘要

成体干细胞的特性、可塑性和体内平衡是由谱系限制的表观遗传和转录调控网络精确调控的。在这里,我们通过整合超级增强子和染色质可及性图谱,描绘了角膜缘干细胞/祖细胞(LSCs)的核心转录调控回路(CRC),并发现 RUNX1 和 SMAD3 对于维持角膜上皮特性和体内平衡是必需的。RUNX1 或 SMAD3 的缺失会抑制 PAX6,并诱导 LSCs 分化为表皮样上皮细胞。RUNX1、PAX6 和 SMAD3(RPS)相互作用,并协同建立一个 CRC,以调控谱系特异性顺式调控图谱。此外,RUNX1 通过调节 H3K27ac 的沉积来塑造 LSC 的染色质结构。RPS 合作的破坏会导致细胞特性的转换和角膜上皮的功能障碍,这与各种人类角膜疾病密切相关。我们的工作强调了 CRC TF 合作对于建立干细胞特性和谱系决定的重要性,并为人类分层上皮体内平衡和发病机制提供了全面的调控原则。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79fc/7814021/6cbd2d7b2a8a/41467_2020_20713_Fig1_HTML.jpg

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