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Myosin-driven actin-microtubule networks exhibit self-organized contractile dynamics

机译:肌球蛋白驱动的肌动蛋白 - 微管网络表现出自组织的收缩动力学

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The cytoskeleton is a dynamic network of proteins, including actin, microtubules, and their associated motor proteins, that enables essential cellular processes such as motility, division, and growth. While actomyosin networks are extensively studied, how interactions between actin and microtubules, ubiquitous in the cytoskeleton, influence actomyosin activity remains an open question. Here, we create a network of co-entangled actin and microtubules driven by myosin II. We combine dynamic differential microscopy, particle image velocimetry, and particle tracking to show that both actin and microtubules undergo ballistic contraction with unexpectedly indistinguishable characteristics. This contractility is distinct from faster disordered motion and rupturing that active actin networks exhibit. Our results suggest that microtubules enable self-organized myosin-driven contraction by providing flexural rigidity and enhanced connectivity to actin networks. Beyond the immediate relevance to cytoskeletal dynamics, our results shed light on the design of active materials that can be precisely tuned by the network composition.
机译:细胞骨架是蛋白质的动态网络,包括肌动蛋白,微管和它们的相关电机蛋白,其使必需的细胞过程如运动,分裂和生长。虽然广泛研究了Actomyosin网络,但肌动蛋白和微管之间的相互作用,缺乏在细胞骨架中,影响Actomyosin活性仍然是一个开放的问题。在这里,我们创建了由肌球蛋白II驱动的共同缠绕的肌动蛋白和微管的网络。我们将动态微分显微镜,粒子图像测速和粒子跟踪组合,表明肌动蛋白和微管均经受意外的难以区分的特征进行弹道收缩。这种收缩性不同于更快的无序运动和破裂的激活肌动蛋白网络展示。我们的研究结果表明,微管通过提供弯曲刚性和增强与肌动蛋白网络的连接来实现自组织的肌球蛋白驱动的收缩。超出与细胞骨骼动态的直接相关性,我们的结果阐明了可以通过网络组成精确调整的活性材料的设计。

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