Chemo-mechanical model of cell polarization initiated by structural polarity.

IF 2.9 3区 化学 Q3 CHEMISTRY, PHYSICAL Soft Matter Pub Date : 2024-10-11 DOI:10.1039/d4sm00800f
Hexiang Wang, Zhimeng Jia, Yuqiang Fang
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Abstract

Cell polarization is crucial in most physiological functions. Living cells at the extracellular matrix (ECM) actively coordinate a polarized morphology to target the preferred signals. In particular, the initial heterogeneity of subcellular components, termed as structural polarity, has been discovered to mediate the early attachment and transmigration of cells in tumour metastasis. However, how heterogeneous cells initiate the early polarization remains incompletely discovered. Here, we establish a multiscale model of a cell to explore the chemo-mechanical mechanisms of cell polarization initiated by structural polarity. The two-dimensional vertex model of the cell is built with the main mechanical components of eukaryotic cells. The initial structural polarity of the modeled cell is introduced by seeding heterogeneous actin filaments at the cell cortex and quantified by the ratio of the filamentous forces at the vertices. Then, the structural polarity is integrated in the reaction-diffusion system of Rho GTPase (Cdc42) at the cell cortex to obtain the traction forces at the leading vertices. Finally, the modeled cell is actuated to spread under the traction forces and discovered to develop into a characteristic polarized morphology. The results indicate that the cell polarization is initiated and dynamically developed by structural polarity through the reaction-diffusion system of Cdc42. In addition, the bistability of Cdc42 activation at the cell cortex is defined and discovered to dominate the polarization status of the cell. Furthermore, biphasic (i.e., positive and negative) durotaxis of the cell is successfully modeled at an ECM with a stiffness gradient, and concluded to be codetermined by the chemo-mechanical coupling of the initial structural polarity and ECM stiffness gradient. The proposed multiscale model provides a quantitative way to probe cell polarization coupled with mechanical stimuli, biochemical reaction and cytoskeletal reorganization, and holds the potential to guide studies of cell polarization under multiple stimuli.

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由结构极性引发细胞极化的化学机械模型
细胞极化在大多数生理功能中都至关重要。细胞外基质(ECM)中的活细胞会主动协调极化形态,从而锁定首选信号。特别是,人们发现亚细胞成分的初始异质性(称为结构极性)介导了肿瘤转移过程中细胞的早期附着和迁移。然而,异质细胞如何启动早期极化仍未完全发现。在此,我们建立了一个细胞的多尺度模型,以探索由结构极性引发的细胞极化的化学机械机制。细胞的二维顶点模型由真核细胞的主要机械组件构建而成。通过在细胞皮层播撒异质肌动蛋白丝,引入模型细胞的初始结构极性,并通过顶点处的丝力比值进行量化。然后,在细胞皮层 Rho GTPase(Cdc42)的反应-扩散系统中整合结构极性,以获得前沿顶点的牵引力。最后,在牵引力的作用下,模型细胞被驱动扩散,并发现其发展成一种特征性的极化形态。结果表明,细胞极化是通过 Cdc42 的反应-扩散系统,由结构极性启动并动态发展的。此外,Cdc42 在细胞皮层激活的双稳态性被定义并发现主导着细胞的极化状态。此外,在具有硬度梯度的 ECM 上成功模拟了细胞的双相(即正向和负向)杜罗克拉西斯,并得出结论认为它是由初始结构极性和 ECM 硬度梯度的化学机械耦合共同决定的。所提出的多尺度模型为探究细胞极化与机械刺激、生化反应和细胞骨架重组的耦合提供了定量方法,并有望指导多种刺激下的细胞极化研究。
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来源期刊
Soft Matter
Soft Matter 工程技术-材料科学:综合
CiteScore
6.00
自引率
5.90%
发文量
891
审稿时长
1.9 months
期刊介绍: Where physics meets chemistry meets biology for fundamental soft matter research.
期刊最新文献
Back cover Chemo-mechanical model of cell polarization initiated by structural polarity. Controlling wall-particle interactions with activity. Viologen-based supramolecular crystal gels: gelation kinetics and sensitivity to temperature. Back cover
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