Department of Bionanoscience, Kavli Institute of Nanoscience, Faculty of Applied Sciences, Delft University of Technology, 2629 HZ Delft, The Netherlands.
J Cell Sci. 2023 Jan 15;136(2). doi: 10.1242/jcs.259639. Epub 2023 Jan 24.
Cellular life exhibits order and complexity, which typically increase over the course of evolution. Cell polarization is a well-studied example of an ordering process that breaks the internal symmetry of a cell by establishing a preferential axis. Like many cellular processes, polarization is driven by self-organization, meaning that the macroscopic pattern emerges as a consequence of microscopic molecular interactions at the biophysical level. However, the role of self-organization in the evolution of complex protein networks remains obscure. In this Review, we provide an overview of the evolution of polarization as a self-organizing process, focusing on the model species Saccharomyces cerevisiae and its fungal relatives. Moreover, we use this model system to discuss how self-organization might relate to evolutionary change, offering a shift in perspective on evolution at the microscopic scale.
细胞生命表现出秩序和复杂性,这些通常会在进化过程中增加。细胞极化是一个经过充分研究的有序过程的例子,它通过建立一个优先轴打破了细胞的内部对称性。像许多细胞过程一样,极化是由自组织驱动的,这意味着宏观模式是生物物理水平上微观分子相互作用的结果。然而,自组织在复杂蛋白质网络进化中的作用仍然不清楚。在这篇综述中,我们提供了一个作为自组织过程的极化进化概述,重点是模式生物酿酒酵母及其真菌亲属。此外,我们使用这个模型系统来讨论自组织如何与进化变化相关联,为微观尺度上的进化提供了一个视角的转变。