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Atomic-resolution structure of the CAP-Gly domain of dynactin on polymeric microtubules determined by magic angle spinning NMR spectroscopy

机译:魔角旋转NMR光谱测定聚合物微管上的动力蛋白CAP-Gly结构域的原子分辨结构

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摘要

Microtubules and their associated proteins perform a broad array of essential physiological functions, including mitosis, polarization and differentiation, cell migration, and vesicle and organelle transport. As such, they have been extensively studied at multiple levels of resolution (e.g., from structural biology to cell biology). Despite these efforts, there remain significant gaps in our knowledge concerning how microtubule-binding proteins bind to microtubules, how dynamics connect different conformational states, and how these interactions and dynamics affect cellular processes. Structures of microtubule-associated proteins assembled on polymeric microtubules are not known at atomic resolution. Here, we report a structure of the cytoskeleton-associated protein glycine-rich (CAP-Gly) domain of dynactin motor on polymeric microtubules, solved by magic angle spinning NMR spectroscopy. We present the intermolecular interface of CAP-Gly with microtubules, derived by recording direct dipolar contacts between CAP-Gly and tubulin using double rotational echo double resonance (dREDOR)-filtered experiments. Our results indicate that the structure adopted by CAP-Gly varies, particularly around its loop regions, permitting its interaction with multiple binding partners and with the microtubules. To our knowledge, this study reports the first atomic-resolution structure of a microtubule-associated protein on polymeric microtubules. Our approach lays the foundation for atomic-resolution structural analysis of other microtubule-associated motors.
机译:微管及其相关蛋白执行广泛的基本生理功能,包括有丝分裂,极化和分化,细胞迁移以及囊泡和细胞器运输。因此,已经在多个分辨率级别上对它们进行了广泛的研究(例如,从结构生物学到细胞生物学)。尽管做出了这些努力,但我们在微管结合蛋白如何与微管结合,动力学如何连接不同的构象状态以及这些相互作用和动力学如何影响细胞过程方面的知识仍然存在巨大差距。组装在聚合物微管上的微管相关蛋白的结构在原子分辨率上是未知的。在这里,我们报告高分子微管上的动力蛋白马达的细胞骨架相关蛋白富含甘氨酸(CAP-Gly)域的结构,通过魔角旋转NMR光谱法解决。我们介绍了CAP-Gly与微管的分子间界面,通过使用双旋转回波双共振(dREDOR)过滤实验记录了CAP-Gly和微管蛋白之间的直接偶极接触而得到。我们的结果表明,CAP-Gly所采用的结构各不相同,尤其是在其环区域附近,从而使其与多个结合配偶体和微管相互作用。据我们所知,这项研究报告了聚合物微管上微管相关蛋白的第一个原子拆分结构。我们的方法为其他与微管相关的电机的原子分辨率结构分析奠定了基础。

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