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Triggering signaling pathways using F-actin self-organization

机译:使用F-肌动蛋白自组织触发信号通路

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摘要

The spatiotemporal organization of proteins within cells is essential for cell fate behavior. Although it is known that the cytoskeleton is vital for numerous cellular functions, it remains unclear how cytoskeletal activity can shape and control signaling pathways in space and time throughout the cell cytoplasm. Here we show that F-actin self-organization can trigger signaling pathways by engineering two novel properties of the microfilament self-organization: (1) the confinement of signaling proteins and (2) their scaffolding along actin polymers. Using in vitro reconstitutions of cellular functions, we found that both the confinement of nanoparticle-based signaling platforms powered by F-actin contractility and the scaffolding of engineered signaling proteins along actin microfilaments can drive a signaling switch. Using Ran-dependent microtubule nucleation, we found that F-actin dynamics promotes the robust assembly of microtubules. Our in vitro assay is a first step towards the development of novel bottom-up strategies to decipher the interplay between cytoskeleton spatial organization and signaling pathway activity.
机译:细胞内蛋白质的时空组织对于细胞命运的行为至关重要。尽管已知细胞骨架对于许多细胞功能至关重要,但仍不清楚细胞骨架活性如何在整个细胞质中形成并控制空间和时间的信号传导途径。在这里,我们显示F-肌动蛋白的自组织可以通过工程化微丝自组织的两个新特性来触发信号传导途径:(1)信号蛋白的限制,以及(2)它们沿着肌动蛋白聚合物的支架。使用细胞功能的体外重构,我们发现由F-肌动蛋白收缩力驱动的基于纳米颗粒的信号平台的限制以及沿着肌动蛋白微丝的工程信号蛋白的支架都可以驱动信号转换。使用Ran依赖的微管成核,我们发现F-肌动蛋白动力学促进了微管的坚固组装。我们的体外测定是开发新的自下而上策略以破译细胞骨架空间组织与信号通路活性之间相互作用的第一步。

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