解读眼表外胚层分化系统中动态单细胞转录景观。

Life medicine Pub Date : 2024-09-05 eCollection Date: 2024-10-01 DOI:10.1093/lifemedi/lnae033
Canwei Zhang, Zesong Lin, Yankun Yu, Siqi Wu, Huaxing Huang, Ying Huang, Jiafeng Liu, Kunlun Mo, Jieying Tan, Zhuo Han, Mingsen Li, Wei Zhao, Hong Ouyang, Xiangjun Chen, Li Wang
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引用次数: 0

摘要

眼表外胚层(OSE)在眼表发育中起着至关重要的作用,但其分化的分子机制尚不完全清楚。在这项研究中,我们使用单细胞转录组学分析来探索胚胎干细胞(ESCs)在体外分化成OSE谱系过程中的动态细胞轨迹和调控网络。我们确定了九个不同的细胞亚群沿着三个主要的发育分支进行分化:神经嵴、神经外胚层和表面外胚层谱系。关键标记基因表达、转录因子活性和信号通路揭示了从未分化的ESCs到命运指定的细胞类型的逐步转变,包括PAX6 + TP63 +群体,表明OSE前体。与小鼠胚胎发育的比较分析证实了该模型在模拟体内外胚层向外胚层转变过程中的准确性。通过整合转录因子激活和细胞间通讯的时间动态,我们构建了从ESCs到不同外胚层谱系分化途径的综合分子图谱。本研究为OSE发育的细胞异质性和调控机制提供了新的见解,有助于理解眼表生物学和设计基于细胞的眼表疾病治疗方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deciphering the dynamic single-cell transcriptional landscape in the ocular surface ectoderm differentiation system.

The ocular surface ectoderm (OSE) is essential for the development of the ocular surface, yet the molecular mechanisms driving its differentiation are not fully understood. In this study, we used single-cell transcriptomic analysis to explore the dynamic cellular trajectories and regulatory networks during the in vitro differentiation of embryonic stem cells (ESCs) into the OSE lineage. We identified nine distinct cell subpopulations undergoing differentiation along three main developmental branches: neural crest, neuroectodermal, and surface ectodermal lineages. Key marker gene expression, transcription factor activity, and signaling pathway insights revealed stepwise transitions from undifferentiated ESCs to fate-specified cell types, including a PAX6 + TP63 + population indicative of OSE precursors. Comparative analysis with mouse embryonic development confirmed the model's accuracy in mimicking in vivo epiblast-to-surface ectoderm dynamics. By integrating temporal dynamics of transcription factor activation and cell-cell communication, we constructed a comprehensive molecular atlas of the differentiation pathway from ESCs to distinct ectodermal lineages. This study provides new insights into the cellular heterogeneity and regulatory mechanisms of OSE development, aiding the understanding of ocular surface biology and the design of cell-based therapies for ocular surface disorders.

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