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磷酸化小窝蛋白-1与收缩性肌动蛋白组装体之间的反馈驱动机制指导细胞持续迁移。

Feedback-Driven Mechanisms Between Phosphorylated Caveolin-1 and Contractile Actin Assemblies Instruct Persistent Cell Migration.

作者信息

Shi Xuemeng, Wen Zeyu, Wang Yajun, Liu Yan-Jun, Shi Kun, Jiu Yaming

机构信息

The Joint Program in Infection and Immunity, Guangzhou Women and Children's Medical Center, Guangzhou Medical University, Guangzhou, China.

The Joint Program in Infection and Immunity, Institut Pasteur of Shanghai, Chinese Academy of Sciences, Shanghai, China.

出版信息

Front Cell Dev Biol. 2021 Apr 12;9:665919. doi: 10.3389/fcell.2021.665919. eCollection 2021.

DOI:10.3389/fcell.2021.665919
PMID:33928090
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8076160/
Abstract

The actin cytoskeleton and membrane-associated caveolae contribute to active processes, such as cell morphogenesis and motility. How these two systems interact and control directional cell migration is an outstanding question but remains understudied. Here we identified a negative feedback between contractile actin assemblies and phosphorylated caveolin-1 (CAV-1) in migrating cells. Cytoplasmic CAV-1 vesicles display actin-associated motilities by sliding along actin filaments or/and coupling to do retrograde flow with actomyosin bundles. Inhibition of contractile stress fibers, but not Arp2/3-dependent branched actin filaments, diminished the phosphorylation of CAV-1 on site Tyr14, and resulted in substantially increased size and decreased motility of cytoplasmic CAV-1 vesicles. Reciprocally, both the CAV-1 phospho-deficient mutation on site Tyr14 and CAV-1 knockout resulted in dramatic AMPK phosphorylation, further causing reduced active level of RhoA-myosin II and increased active level of Rac1-PAK1-Cofilin, consequently led to disordered contractile stress fibers and prominent lamellipodia. As a result, cells displayed depolarized morphology and compromised directional migration. Collectively, we propose a model in which feedback-driven regulation between actin and CAV-1 instructs persistent cell migration.

摘要

肌动蛋白细胞骨架和膜相关小窝参与细胞形态发生和运动等活跃过程。这两个系统如何相互作用并控制细胞定向迁移是一个尚未解决的重要问题,但仍未得到充分研究。在这里,我们发现迁移细胞中收缩性肌动蛋白组装体与磷酸化小窝蛋白-1(CAV-1)之间存在负反馈。细胞质CAV-1囊泡通过沿肌动蛋白丝滑动或/和与肌动球蛋白束耦合进行逆行流动来展示与肌动蛋白相关的运动。抑制收缩应力纤维而非抑制Arp2/3依赖性分支肌动蛋白丝,会减少CAV-1在Tyr14位点的磷酸化,并导致细胞质CAV-1囊泡的大小显著增加且运动性降低。相反,Tyr14位点的CAV-1磷酸化缺陷突变和CAV-1基因敲除均导致显著的AMPK磷酸化,进而导致RhoA-肌球蛋白II的活性水平降低以及Rac1-PAK1-丝切蛋白的活性水平升高,最终导致收缩应力纤维紊乱和片状伪足突出。结果,细胞呈现去极化形态且定向迁移受损。总体而言,我们提出了一个模型,其中肌动蛋白和CAV-1之间的反馈驱动调节指导细胞持续迁移。

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