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一个将极性信号与细胞黏附耦合的数学模型解释了多种细胞迁移模式。

A mathematical model coupling polarity signaling to cell adhesion explains diverse cell migration patterns.

作者信息

Holmes William R, Park JinSeok, Levchenko Andre, Edelstein-Keshet Leah

机构信息

Department of Physics and Astronomy, Vanderbilt University, Nashville, Tennessee, United States of America.

Department of Biomedical Engineering, Yale University, New Haven, Connecticut, United States of America.

出版信息

PLoS Comput Biol. 2017 May 4;13(5):e1005524. doi: 10.1371/journal.pcbi.1005524. eCollection 2017 May.

Abstract

Protrusion and retraction of lamellipodia are common features of eukaryotic cell motility. As a cell migrates through its extracellular matrix (ECM), lamellipod growth increases cell-ECM contact area and enhances engagement of integrin receptors, locally amplifying ECM input to internal signaling cascades. In contrast, contraction of lamellipodia results in reduced integrin engagement that dampens the level of ECM-induced signaling. These changes in cell shape are both influenced by, and feed back onto ECM signaling. Motivated by experimental observations on melanoma cells lines (1205Lu and SBcl2) migrating on fibronectin (FN) coated topographic substrates (anisotropic post-density arrays), we probe this interplay between intracellular and ECM signaling. Experimentally, cells exhibited one of three lamellipodial dynamics: persistently polarized, random, or oscillatory, with competing lamellipodia oscillating out of phase (Park et al., 2017). Pharmacological treatments, changes in FN density, and substrate topography all affected the fraction of cells exhibiting these behaviours. We use these observations as constraints to test a sequence of hypotheses for how intracellular (GTPase) and ECM signaling jointly regulate lamellipodial dynamics. The models encoding these hypotheses are predicated on mutually antagonistic Rac-Rho signaling, Rac-mediated protrusion (via activation of Arp2/3 actin nucleation) and Rho-mediated contraction (via ROCK phosphorylation of myosin light chain), which are coupled to ECM signaling that is modulated by protrusion/contraction. By testing each model against experimental observations, we identify how the signaling layers interact to generate the diverse range of cell behaviors, and how various molecular perturbations and changes in ECM signaling modulate the fraction of cells exhibiting each. We identify several factors that play distinct but critical roles in generating the observed dynamic: (1) competition between lamellipodia for shared pools of Rac and Rho, (2) activation of RhoA by ECM signaling, and (3) feedback from lamellipodial growth or contraction to cell-ECM contact area and therefore to the ECM signaling level.

摘要

片状伪足的伸出和回缩是真核细胞运动的常见特征。当细胞在其细胞外基质(ECM)中迁移时,片状伪足的生长增加了细胞与ECM的接触面积,并增强了整合素受体的结合,从而局部放大了ECM对内部信号级联反应的输入。相反,片状伪足的收缩导致整合素结合减少,从而减弱了ECM诱导的信号水平。细胞形状的这些变化既受ECM信号的影响,又会反馈到ECM信号上。受黑色素瘤细胞系(1205Lu和SBcl2)在纤连蛋白(FN)包被的地形底物(各向异性柱密度阵列)上迁移的实验观察结果的启发,我们探究了细胞内信号与ECM信号之间的这种相互作用。在实验中,细胞表现出三种片状伪足动力学之一:持续极化、随机或振荡,相互竞争的片状伪足呈异相振荡(Park等人,2017年)。药物处理、FN密度的变化和底物地形都影响表现出这些行为的细胞比例。我们利用这些观察结果作为约束条件,来检验一系列关于细胞内(GTP酶)和ECM信号如何共同调节片状伪足动力学的假设。编码这些假设的模型基于相互拮抗的Rac-Rho信号传导、Rac介导的伸出(通过激活Arp2/3肌动蛋白成核)和Rho介导的收缩(通过肌球蛋白轻链的ROCK磷酸化),它们与由伸出/收缩调节的ECM信号传导相耦合。通过根据实验观察结果测试每个模型,我们确定了信号层如何相互作用以产生各种细胞行为,以及各种分子扰动和ECM信号变化如何调节表现出每种行为的细胞比例。我们确定了几个在产生观察到的动态中发挥独特但关键作用的因素:(1)片状伪足之间对Rac和Rho共享池的竞争,(2)ECM信号对RhoA的激活,以及(3)片状伪足生长或收缩对细胞-ECM接触面积以及因此对ECM信号水平的反馈。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/680f/5436877/8a389f94e8d2/pcbi.1005524.g001.jpg

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