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Dynamics of PAR Proteins Explain the Oscillation and Ratcheting Mechanisms in Dorsal Closure

机译:PAR蛋白的动力学解释了背闭合的振荡和棘轮机制。

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摘要

We present a vertex-based model for dorsal closure that predicts the mechanics of cell oscillation and contraction from the dynamics of the PAR proteins. Based on experimental observations of how aPKC, Par-6, and Bazooka translocate from the circumference of the apical surface to the medial domain, and how they interact with each other and ultimately regulate the apicomedial actomyosin, we formulate a system of differential equations that captures the key features of dorsal closure, including distinctive behaviors in its early, slow, and fast phases. The oscillation in cell area in the early phase of dorsal closure results from an intracellular negative feedback loop that involves myosin, an actomyosin regulator, aPKC, and Bazooka. In the slow phase, gradual sequestration of apicomedial aPKC by Bazooka clusters causes incomplete disassembly of the actomyosin network over each cycle of oscillation, thus producing a so-called ratchet. The fast phase of rapid cell and tissue contraction arises when medial myosin, no longer antagonized by aPKC, builds up in time and produces sustained contraction. Thus, a minimal set of rules governing the dynamics of the PAR proteins, extracted from experimental observations, can account for all major mechanical outcomes of dorsal closure, including the transitions between its three distinct phases.
机译:我们提出了一个基于顶点的背闭合模型,该模型根据PAR蛋白的动力学预测细胞振荡和收缩的机理。基于aPKC,Par-6和Bazooka如何从顶表面的圆周移位到内侧结构域以及它们如何相互作用以及最终调节apicomedial肌动球蛋白的实验观察,我们建立了一个微分方程组背闭合的关键特征,包括早期,缓慢和快速阶段的独特行为。背闭合早期细胞区域的振荡是由细胞内负反馈环引起的,该环涉及肌球蛋白,肌动球蛋白调节剂,aPKC和火箭筒。在慢速阶段,火箭筒簇对蜂巢状aPKC的逐步隔离会导致在每个振荡周期内放线菌素网络的分解不完全,从而产生所谓的棘齿。当内侧肌球蛋白不再被aPKC拮抗时,就会迅速形成细胞和组织快速收缩的快速阶段,并及时建立并产生持续的收缩。因此,从实验观察中提取的控制PAR蛋白动力学的最小规则集可以解释背闭合的所有主要机械结果,包括其三个不同阶段之间的过渡。

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