EMBL Heidelberg, Meyerhofstraße 1, 69117 Heidelberg, Germany; Joint first authors.
EMBL Heidelberg, Meyerhofstraße 1, 69117 Heidelberg, Germany.
Trends Cell Biol. 2018 Jul;28(7):541-550. doi: 10.1016/j.tcb.2018.02.008. Epub 2018 Mar 28.
Self-organization guides robust, spatiotemporally ordered formation of complex tissues and ultimately whole organisms. While products of gene expression serve as building blocks of living matter, how these interact to give rise to tissues of distinct patterns and function remains a central question in biology. Tissue self-organization relies on dynamic interactions between constituents spanning a range of spatiotemporal scales with tuneable chemical and mechanical parameters. This review highlights recent studies dissecting mechanisms of these interactions. We propose that feedback interactions between cell polarity, mechanics, and fate are a key principle underlying tissue self-organization. We also provide a glimpse into how such processes can be studied in future endeavors.
自组织指导复杂组织和最终整个生物体的强大、时空有序的形成。虽然基因表达的产物是生命物质的构建块,但这些产物如何相互作用以产生具有不同模式和功能的组织仍然是生物学中的一个核心问题。组织自组织依赖于在具有可调化学和机械参数的范围广泛的时空尺度上跨越组成部分之间的动态相互作用。这篇综述强调了最近研究这些相互作用机制的研究。我们提出,细胞极性、力学和命运之间的反馈相互作用是组织自组织的一个关键原则。我们还提供了一个视角,了解如何在未来的努力中研究这些过程。