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The role of tubulin-tubulin lattice contacts in the mechanism of microtubule dynamic instability

机译:微管蛋白 - 微管蛋白晶格接触在微管动态不稳定性机制中的作用

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Microtubules form from longitudinally and laterally assembling tubulin alpha-beta dimers. The assembly induces strain in tubulin, resulting in cycles of microtubule catastrophe and regrowth. This 'dynamic instability' is governed by GTP hydrolysis that renders the microtubule lattice unstable, but it is unclear how. We used a human microtubule nucleating and stabilizing neuronal protein, doublecortin, and high-resolution cryo-EM to capture tubulin's elusive hydrolysis intermediate GDP center dot Pi state, alongside the prehydrolysis analog GMPCPP state and the posthydrolysis GDP state with and without an anticancer drug, Taxol. GTP hydrolysis to GDP center dot Pi followed by Pi release constitutes two distinct structural transitions, causing unevenly distributed compressions of tubulin dimers, thereby tightening longitudinal and loosening lateral interdimer contacts. We conclude that microtubule catastrophe is triggered because the lateral contacts can no longer counteract the strain energy stored in the lattice, while reinforcement of the longitudinal contacts may support generation of force.
机译:从纵向和横向组装微管蛋白α-β二聚体形成微管。组件诱导小管蛋白的菌株,导致微管灾难和再生的循环。这种“动态不稳定”受GTP水解的管辖,使微管晶格不稳定,但目前尚不清楚。我们使用人体微管核和稳定神经元蛋白,双峰素和高分辨率的Cryo-em,以捕获小管蛋白的难以捉摸的水解中间体GDP中心点PI状态,以及具有和没有抗癌药物的前羟吡咯解GDP状态,紫杉醇。 GTP水解至GDP中心点PI,然后是PI释放构成两个不同的结构转变,导致微管蛋白二聚体的不均匀分布的压缩,从而拧紧纵向和松动的横向闭合剂触点。我们得出结论,触发微管灾难,因为横向触点不再抵消储存在晶格中的应变能量,同时纵向触点的加固可以支持产生力的产生。

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