Dynamic mechanisms for membrane skeleton transitions.

IF 3.3 3区 生物学 Q3 CELL BIOLOGY Journal of cell science Pub Date : 2025-01-22 DOI:10.1242/jcs.263473
Mayte Bonilla-Quintana, Andrea Ghisleni, Nils C Gauthier, Padmini Rangamani
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Abstract

The plasma membrane and the underlying skeleton form a protective barrier for eukaryotic cells. The molecular players forming this complex composite material constantly rearrange under mechanical stress. One of those molecules, spectrin, is ubiquitous in the membrane skeleton and linked by short actin filaments. In this work, we developed a generalized network model for the membrane skeleton integrated with myosin contractility and membrane mechanics to investigate the response of the spectrin meshwork to mechanical loading. We observed that the force generated by membrane bending is important to maintain a regular skeletal structure suggesting that the membrane is not just supported by the skeleton, but has an active contribution to the stability of the cell structure. We found that spectrin and myosin turnover are necessary for the transition between stress and rest states in the skeleton. Simulations of a fully connected network representing a whole cell show that the surface area constraint of the plasma membrane and volume restriction of the cytoplasm enhance the stability of the membrane skeleton. Furthermore, we showed that cell attachment through adhesions promotes cell shape stabilization.

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膜骨架转变的动力机制。
质膜和下面的骨架形成了真核细胞的保护屏障。形成这种复杂复合材料的分子分子在机械应力作用下不断重新排列。其中一种分子,幽灵蛋白,在膜骨架中无处不在,并由短肌动蛋白丝连接。在这项工作中,我们建立了一个结合肌球蛋白收缩性和膜力学的膜骨架广义网络模型,以研究谱网对机械载荷的响应。我们观察到膜弯曲产生的力对维持正常的骨骼结构很重要,这表明膜不仅由骨骼支撑,而且对细胞结构的稳定性有积极的贡献。我们发现spectrin和myosin的转换对于骨骼在应激状态和休息状态之间的转换是必要的。对代表整个细胞的全连接网络的模拟表明,质膜的表面积约束和细胞质的体积限制增强了膜骨架的稳定性。此外,我们还发现通过黏附的细胞附着促进了细胞形状的稳定。
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来源期刊
Journal of cell science
Journal of cell science 生物-细胞生物学
CiteScore
7.30
自引率
2.50%
发文量
393
审稿时长
1.4 months
期刊介绍: Journal of Cell Science publishes cutting-edge science, encompassing all aspects of cell biology.
期刊最新文献
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