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The mechanisms of microtubule catastrophe and rescue: implications from analysis of a dimer-scale computational model

机译:微管灾难和救援的机制:来自二聚体规模计算模型的分析的启示

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Microtubule (MT) dynamic instability is fundamental to many cell functions, but its mechanism remains poorly understood, in part because it is difficult to gain information about the dimer-scale events at the MT tip. To address this issue, we used a dimer-scale computational model of MT assembly that is consistent with tubulin structure and biochemistry, displays dynamic instability, and covers experimentally relevant spans of time. It allows us to correlate macroscopic behaviors (dynamic instability parameters) with microscopic structures (tip conformations) and examine protofilament structure as the tip spontaneously progresses through both catastrophe and rescue. The model's behavior suggests that several commonly held assumptions about MT dynamics should be reconsidered. Moreover, it predicts that short, interprotofilament “cracks” (laterally unbonded regions between protofilaments) exist even at the tips of growing MTs and that rapid fluctuations in the depths of these cracks influence both catastrophe and rescue. We conclude that experimentally observed microtubule behavior can best be explained by a “stochastic cap” model in which tubulin subunits hydrolyze GTP according to a first-order reaction after they are incorporated into the lattice; catastrophe and rescue result from stochastic fluctuations in the size, shape, and extent of lateral bonding of the cap.
机译:微管(MT)动态不稳定性是许多细胞功能的基础,但其机理仍知之甚少,部分原因是难以获得有关MT尖端二聚体事件的信息。为了解决此问题,我们使用了MT装配的二聚体级计算模型,该模型与微管蛋白结构和生物化学一致,显示动态不稳定性,并涵盖了实验相关的时间跨度。它使我们能够将宏观行为(动态不稳定性参数)与微观结构(尖端构象)相关联,并在尖端自发地经历灾难和抢救时检查原丝结构。该模型的行为表明,应重新考虑关于MT动力学的几个普遍假设。而且,它预测甚至在生长MT的尖端也存在短的,原丝间“裂纹”(原丝之间的侧向未结合区域),并且这些裂纹深度的快速波动会影响灾难和救援。我们得出的结论是,实验观察到的微管行为可以用“随机帽”模型最好地解释,在该模型中,微管蛋白亚基被掺入晶格后根据一级反应水解GTP。灾难和抢救是由于帽的尺寸,形状和侧向粘结程度的随机波动而引起的。

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