揭示肌动蛋白细胞骨架对称性破坏的物理学基础:基于人工细胞的方法

Biophysics and Physicobiology Pub Date : 2023-08-19 eCollection Date: 2023-01-01 DOI:10.2142/biophysico.bppb-v20.0032
Ryota Sakamoto, Yusuke T Maeda
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引用次数: 0

摘要

单细胞行为涵盖许多生物功能,例如形态发生和组织转移过程中的细胞分裂,以及癌细胞入侵和免疫细胞反应过程中的细胞迁移。细胞器定位和细胞形状的对称性破坏通常与这些生物功能有关。细胞尺度对称性破坏的主要参与者之一是肌动蛋白细胞骨架,它由肌动蛋白丝和产生收缩力的肌球蛋白马达组成。然而,由于肌动蛋白网络的自组织受细胞内生化信号的调控,肌动蛋白细胞骨架的机械收缩如何诱导各种自组织行为并驱动细胞尺度的对称性破缺仍不清楚。近来,为了了解肌动蛋白细胞骨架对称性断裂的物理基础,人们开发了用脂质单层包裹细胞质肌动蛋白网络的人工细胞模型。通过将肌动蛋白力学与活细胞内复杂的生化信号传递解耦,该系统可让人们研究限定在细胞大小空间内的肌动蛋白网络的自组织。我们回顾了封闭肌动蛋白网络物理学的最新发展,并对基于人工细胞的方法提供了未来展望。这篇综述文章是日文文章《封闭条件下细胞迁移的物理原理》的扩展版:基于人工细胞的自下而上方法》,发表于《SEIBUTSU BUTSURI》第 63 卷第 163-164 页(2023 年)。
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Unveiling the physics underlying symmetry breaking of the actin cytoskeleton: An artificial cell-based approach.

Single-cell behaviors cover many biological functions, such as cell division during morphogenesis and tissue metastasis, and cell migration during cancer cell invasion and immune cell responses. Symmetry breaking of the positioning of organelles and the cell shape are often associated with these biological functions. One of the main players in symmetry breaking at the cellular scale is the actin cytoskeleton, comprising actin filaments and myosin motors that generate contractile forces. However, because the self-organization of the actomyosin network is regulated by the biochemical signaling in cells, how the mechanical contraction of the actin cytoskeleton induces diverse self-organized behaviors and drives the cell-scale symmetry breaking remains unclear. In recent times, to understand the physical underpinnings of the symmetry breaking exhibited in the actin cytoskeleton, artificial cell models encapsulating the cytoplasmic actomyosin networks covered with lipid monolayers have been developed. By decoupling the actomyosin mechanics from the complex biochemical signaling within living cells, this system allows one to study the self-organization of actomyosin networks confined in cell-sized spaces. We review the recent developments in the physics of confined actomyosin networks and provide future perspectives on the artificial cell-based approach. This review article is an extended version of the Japanese article, The Physical Principle of Cell Migration Under Confinement: Artificial Cell-based Bottom-up Approach, published in SEIBUTSU BUTSURI Vol. 63, p. 163-164 (2023).

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