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迈向细胞迁移统一模型:肌动蛋白动力学的时空调节

Crawling toward a unified model of cell mobility: spatial and temporal regulation of actin dynamics.

作者信息

Rafelski Susanne M, Theriot Julie A

机构信息

Department of Biochemistry, Stanford University, Stanford, California 94305, USA.

出版信息

Annu Rev Biochem. 2004;73:209-39. doi: 10.1146/annurev.biochem.73.011303.073844.

Abstract

Crawling cells of various morphologies displace themselves in their biological environments by a similar overall mechanism of protrusion through actin assembly at the front coordinated with retraction at the rear. Different cell types organize very distinct protruding structures, yet they do so through conserved biochemical mechanisms to regulate actin polymerization dynamics and vary the mechanical properties of these structures. The moving cell must spatially and temporally regulate the biochemical interactions of its protein components to exert control over higher-order dynamic structures created by these proteins and global cellular responses four or more orders of magnitude larger in scale and longer in time than the individual protein-protein interactions that comprise them. To fulfill its biological role, a cell globally responds with high sensitivity to a local perturbation or signal and coordinates its many intracellular actin-based functional structures with the physical environment it experiences to produce directed movement. This review attempts to codify some unifying principles for cell motility that span organizational scales from single protein polymer filaments to whole crawling cells.

摘要

各种形态的爬行细胞在其生物环境中通过一种类似的整体机制进行位移,即通过前端肌动蛋白组装形成突起,并与后端的收缩相协调。不同的细胞类型会组织出非常不同的突出结构,但它们是通过保守的生化机制来调节肌动蛋白聚合动力学,并改变这些结构的力学性质。移动的细胞必须在空间和时间上调节其蛋白质成分的生化相互作用,以控制由这些蛋白质产生的高阶动态结构以及比构成它们的单个蛋白质-蛋白质相互作用在规模上大四到五个数量级且时间上更长的整体细胞反应。为了履行其生物学功能,细胞会对局部扰动或信号做出高灵敏度的整体反应,并将其许多基于细胞内肌动蛋白的功能结构与它所经历的物理环境相协调,以产生定向运动。本综述试图编纂一些关于细胞运动性的统一原则,这些原则涵盖了从单蛋白质聚合物细丝到整个爬行细胞的组织尺度。

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