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Actomyosin pulsation and flows in an active elastomer with turnover and network remodeling

机译:肌动球蛋白脉动并在活性弹性体中流动具有周转和网络重塑

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摘要

Tissue remodeling requires cell shape changes associated with pulsation and flow of the actomyosin cytoskeleton. Here we describe the hydrodynamics of actomyosin as a confined active elastomer with turnover of its components. Our treatment is adapted to describe the diversity of contractile dynamical regimes observed in vivo. When myosin-induced contractile stresses are low, the deformations of the active elastomer are affine and exhibit spontaneous oscillations, propagating waves, contractile collapse and spatiotemporal chaos. We study the nucleation, growth and coalescence of actomyosin-dense regions that, beyond a threshold, spontaneously move as a spatially localized traveling front. Large myosin-induced contractile stresses lead to nonaffine deformations due to enhanced actin and crosslinker turnover. This results in a transient actin network that is constantly remodeling and naturally accommodates intranetwork flows of the actomyosin-dense regions. We verify many predictions of our study in Drosophila embryonic epithelial cells undergoing neighbor exchange during germband extension.
机译:组织重塑需要与放线菌素细胞骨架的搏动和流动相关的细胞形状变化。在这里,我们将肌动球蛋白描述为一种受限的活性弹性体,其组分的流动性与流体动力学有关。我们的治疗方法适于描述体内观察到的收缩动态机制的多样性。当肌球蛋白引起的收缩应力低时,活性弹性体的变形是仿射的,并表现出自发振荡,传播波,收缩塌陷和时空混乱。我们研究了肌动球蛋白致密区域的成核,生长和聚结,该区域超出阈值时会自发地作为空间局部行进的前沿运动。由于增强的肌动蛋白和交联剂周转,大的肌球蛋白诱导的收缩应力导致非仿射变形。这导致瞬时肌动蛋白网络不断重塑并自然适应肌动球蛋白致密区域的内部网络流动。我们在果皮扩展期间经历邻居交换的果蝇胚胎上皮细胞中验证了我们研究的许多预测。

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