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Interplay of active processes modulates tension and drives phase transition in self-renewing, motor-driven cytoskeletal networks

机译:活跃过程的相互作用调节张力并驱动自我更新,运动驱动的细胞骨架网络中的相变

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摘要

The actin cytoskeleton—a complex, nonequilibrium network consisting of filaments, actin-crosslinking proteins (ACPs) and motors—confers cell structure and functionality, from migration to morphogenesis. While the core components are recognized, much less is understood about the behaviour of the integrated, disordered and internally active system with interdependent mechano-chemical component properties. Here we use a Brownian dynamics model that incorporates key and realistic features—specifically actin turnover, ACP (un)binding and motor walking—to reveal the nature and underlying regulatory mechanisms of overarching cytoskeletal states. We generate multi-dimensional maps that show the ratio in activity of these microscopic elements determines diverse global stress profiles and the induction of nonequilibrium morphological phase transition from homogeneous to aggregated networks. In particular, actin turnover dynamics plays a prominent role in tuning stress levels and stabilizing homogeneous morphologies in crosslinked, motor-driven networks. The consequence is versatile functionality, from dynamic steady-state prestress to large, pulsed constrictions.
机译:肌动蛋白细胞骨架是由细丝,肌动蛋白交联蛋白(ACP)和运动蛋白组成的复杂的非平衡网络,赋予细胞结构和功能,从迁移到形态发生。尽管公认了核心组件,但对具有相互依赖的机械化学组件属性的集成,无序和内部活动系统的行为了解得很少。在这里,我们使用结合了关键和现实特征(特别是肌动蛋白周转率,ACP(非)结合和运动步行)的布朗动力学模型来揭示总体细胞骨架状态的本质和潜在的调节机制。我们生成了多维图,这些图显示了这些微观元素的活动比决定了不同的全局应力分布,并诱导了从均质网络到聚集网络的非平衡形态相变。尤其是,肌动蛋白周转动力学在调节应力水平和稳定交联的电机驱动网络中的均匀形态方面起着重要作用。结果是多种功能,从动态稳态预应力到大的脉冲收缩。

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