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通过机械反馈协调细胞极化和形态发生。

Coordinating cell polarization and morphogenesis through mechanical feedback.

机构信息

Department of Physics, University of California, University of California, Santa Barbara, California, United States of America.

California NanoSystems Institute, University of California, Santa Barbara, California, United States of America.

出版信息

PLoS Comput Biol. 2021 Jan 28;17(1):e1007971. doi: 10.1371/journal.pcbi.1007971. eCollection 2021 Jan.

Abstract

Many cellular processes require cell polarization to be maintained as the cell changes shape, grows or moves. Without feedback mechanisms relaying information about cell shape to the polarity molecular machinery, the coordination between cell polarization and morphogenesis, movement or growth would not be possible. Here we theoretically and computationally study the role of a genetically-encoded mechanical feedback (in the Cell Wall Integrity pathway) as a potential coordination mechanism between cell morphogenesis and polarity during budding yeast mating projection growth. We developed a coarse-grained continuum description of the coupled dynamics of cell polarization and morphogenesis as well as 3D stochastic simulations of the molecular polarization machinery in the evolving cell shape. Both theoretical approaches show that in the absence of mechanical feedback (or in the presence of weak feedback), cell polarity cannot be maintained at the projection tip during growth, with the polarization cap wandering off the projection tip, arresting morphogenesis. In contrast, for mechanical feedback strengths above a threshold, cells can robustly maintain cell polarization at the tip and simultaneously sustain mating projection growth. These results indicate that the mechanical feedback encoded in the Cell Wall Integrity pathway can provide important positional information to the molecular machinery in the cell, thereby enabling the coordination of cell polarization and morphogenesis.

摘要

许多细胞过程都需要维持细胞极化,以适应细胞形状的变化、生长或运动。如果没有将细胞形状的信息反馈给极性分子机制的反馈机制,细胞极化和形态发生、运动或生长之间的协调将是不可能的。在这里,我们从理论和计算两个方面研究了一种遗传编码的机械反馈(在细胞壁完整性途径中)作为芽殖酵母交配突起生长过程中细胞形态发生和极性之间潜在协调机制的作用。我们开发了一种粗粒度的连续体描述,用于细胞极化和形态发生的耦合动力学,以及在不断变化的细胞形状中分子极化机制的 3D 随机模拟。这两种理论方法都表明,在没有机械反馈(或存在弱反馈)的情况下,细胞极性在生长过程中无法在突起尖端维持,极化帽会偏离突起尖端,从而停止形态发生。相比之下,对于机械反馈强度超过阈值的情况,细胞可以在尖端稳定地维持细胞极化,并同时维持交配突起生长。这些结果表明,细胞壁完整性途径中编码的机械反馈可以为细胞内的分子机制提供重要的位置信息,从而实现细胞极化和形态发生的协调。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/13d5/7872284/7898eea7b0fd/pcbi.1007971.g001.jpg

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