Actomyosin forces in cell migration: Moving beyond cell body retraction

IF 3.2 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY BioEssays Pub Date : 2024-08-02 DOI:10.1002/bies.202400055
Kai Weißenbruch, Roberto Mayor
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Abstract

In textbook illustrations of migrating cells, actomyosin contractility is typically depicted as the contraction force necessary for cell body retraction. This dogma has been transformed by the molecular clutch model, which acknowledges that actomyosin traction forces also generate and transmit biomechanical signals at the leading edge, enabling cells to sense and shape their migratory path in mechanically complex environments. To fulfill these complementary functions, the actomyosin system assembles a gradient of contractile energy along the front-rear axis of migratory cells. Here, we highlight the hierarchic assembly and self-regulatory network structure of the actomyosin system and explain how the kinetics of different nonmuscle myosin II (NM II) paralogs synergize during contractile force generation. Our aim is to emphasize how protrusion formation, cell adhesion, contraction, and retraction are spatiotemporally integrated during different modes of migration, including chemotaxis and durotaxis. Finally, we hypothesize how different NM II paralogs might tune aspects of migration in vivo, highlighting future research directions.

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细胞迁移中的肌动蛋白力:超越细胞体回缩
在迁移细胞的教科书插图中,肌动蛋白收缩力通常被描述为细胞体回缩所需的收缩力。分子离合器模型改变了这一教条,它承认肌动蛋白牵引力还能在前缘产生和传递生物力学信号,使细胞能够在复杂的机械环境中感知和塑造自己的迁移路径。为了实现这些互补功能,肌动蛋白系统沿着迁移细胞的前后轴组装了一个收缩能量梯度。在这里,我们强调了肌动蛋白系统的分级组装和自我调节网络结构,并解释了在产生收缩力的过程中,不同非肌肉肌球蛋白 II(NM II)旁系亲属的动力学是如何协同作用的。我们的目的是强调突起形成、细胞粘附、收缩和回缩是如何在不同的迁移模式(包括趋化和杜洛他西斯)过程中进行时空整合的。最后,我们假设了不同的 NM II 旁系亲属可能如何调整体内迁移的各个方面,并强调了未来的研究方向。
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来源期刊
BioEssays
BioEssays 生物-生化与分子生物学
CiteScore
7.30
自引率
2.50%
发文量
167
审稿时长
4-8 weeks
期刊介绍: molecular – cellular – biomedical – physiology – translational research – systems - hypotheses encouraged BioEssays is a peer-reviewed, review-and-discussion journal. Our aims are to publish novel insights, forward-looking reviews and commentaries in contemporary biology with a molecular, genetic, cellular, or physiological dimension, and serve as a discussion forum for new ideas in these areas. An additional goal is to encourage transdisciplinarity and integrative biology in the context of organismal studies, systems approaches, through to ecosystems, where appropriate.
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