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Single-Cell Transcriptomics Reveals Spatial and Temporal Turnover of Keratinocyte Differentiation Regulators

机译:单细胞转录组学揭示了角质形成细胞分化调节剂的时空转换。

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摘要

Keratinocyte differentiation requires intricately coordinated spatiotemporal expression changes that specify epidermis structure and function. This article utilizes single-cell RNA-seq data from 22,338 human foreskin keratinocytes to reconstruct the transcriptional regulation of skin development and homeostasis genes, organizing them by differentiation stage and also into transcription factor (TF)–associated modules. We identify groups of TFs characterized by coordinate expression changes during progression from the undifferentiated basal to the differentiated state and show that these TFs also have concordant differential predicted binding enrichment in the super-enhancers previously reported to turn over between the two states. The identified TFs form a core subset of the regulators controlling gene modules essential for basal and differentiated keratinocyte functions, supporting their nomination as master coordinators of keratinocyte differentiation. Experimental depletion of the TFs ZBED2 and ETV4, both predicted to promote the basal state, induces differentiation. Furthermore, our single-cell RNA expression analysis reveals preferential expression of antioxidant genes in the basal state, suggesting keratinocytes actively suppress reactive oxygen species to maintain the undifferentiated state. Overall, our work demonstrates diverse computational methods to advance our understanding of dynamic gene regulation in development.
机译:角质形成细胞的分化需要指定表皮结构和功能的复杂的时空表达变化。本文利用来自22,338个人包皮角质形成细胞的单细胞RNA-seq数据来重建皮肤发育和体内稳态基因的转录调控,并通过分化阶段将它们组织起来,并整合到转录因子(TF)相关模块中。我们鉴定了以从未分化的基础到分化状态的进展过程中坐标表达变化为特征的TFs组,并显示这些TFs在先前报道的在两种状态之间转换的超级增强子中也具有一致的差异预测结合富集。鉴定出的TF构成了调节基因模块的核心子集,这些模块对于基础和分化的角质形成细胞功能至关重要,从而支持了它们被提名为角质形成细胞分化的主要协调者。 TFs ZBED2和ETV4的实验耗竭均被预测会促进基础状态,从而诱导分化。此外,我们的单细胞RNA表达分析揭示了抗氧化剂基因在基础状态中的优先表达,这表明角质形成细胞可以主动抑制活性氧,从而维持未分化状态。总体而言,我们的工作展示了多种计算方法,可增进我们对发育中动态基因调控的理解。

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