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原肠胚形成过程中的信号转导:来自小鼠胚胎和体外系统的见解。

Signaling regulation during gastrulation: Insights from mouse embryos and in vitro systems.

机构信息

Developmental Biology Program, Sloan Kettering Institute, Memorial Sloan Kettering Cancer Center, New York, NY, United States; Wellcome Trust-Medical Research Council Cambridge Stem Cell Institute, University of Cambridge, Jeffrey Cheah Biomedical Centre Cambridge Biomedical Campus, Cambridge, United Kingdom.

Developmental Biology Program, Sloan Kettering Institute, Memorial Sloan Kettering Cancer Center, New York, NY, United States.

出版信息

Curr Top Dev Biol. 2020;137:391-431. doi: 10.1016/bs.ctdb.2019.11.011. Epub 2019 Dec 11.

Abstract

Gastrulation is the process whereby cells exit pluripotency and concomitantly acquire and pattern distinct cell fates. This is driven by the convergence of WNT, BMP, Nodal and FGF signals, which are tightly spatially and temporally controlled, resulting in regional and stage-specific signaling environments. The combination, level and duration of signals that a cell is exposed to, according its position within the embryo and the developmental time window, dictates the fate it will adopt. The key pathways driving gastrulation exhibit complex interactions, which are difficult to disentangle in vivo due to the complexity of manipulating multiple signals in parallel with high spatiotemporal resolution. Thus, our current understanding of the signaling dynamics regulating gastrulation is limited. In vitro stem cell models have been established, which undergo organized cellular differentiation and patterning. These provide amenable, simplified, deconstructed and scalable models of gastrulation. While the foundation of our understanding of gastrulation stems from experiments in embryos, in vitro systems are now beginning to reveal the intricate details of signaling regulation. Here we discuss the current state of knowledge of the role, regulation and dynamic interaction of signaling pathways that drive mouse gastrulation.

摘要

原肠作用是细胞退出多能性并同时获得并形成不同细胞命运的过程。这是由 WNT、BMP、Nodal 和 FGF 信号的收敛驱动的,这些信号在空间和时间上受到严格控制,导致区域和阶段特异性的信号环境。根据细胞在胚胎中的位置和发育时间窗口,细胞暴露于的信号的组合、水平和持续时间决定了它将采用的命运。驱动原肠作用的关键途径表现出复杂的相互作用,由于难以以高时空分辨率并行操纵多个信号,因此在体内难以将其分离。因此,我们目前对调节原肠作用的信号动力学的理解是有限的。已经建立了体外干细胞模型,这些模型经历有组织的细胞分化和模式形成。这些提供了易于处理、简化、解构和可扩展的原肠作用模型。虽然我们对原肠作用的理解基础源于胚胎实验,但体外系统现在开始揭示信号调节的复杂细节。在这里,我们讨论了驱动小鼠原肠作用的信号通路的作用、调节和动态相互作用的现有知识状态。

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