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Submolecular-Scale Imaging of α-Helices and C-Terminal Domains of Tubulins by Frequency Modulation Atomic Force Microscopy in Liquid

机译:调频原子力显微镜在液体中的微管蛋白的α螺旋和C末端域的亚分子规模成像。

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摘要

In this study, we directly imaged subnanometer-scale structures of tubulins by performing frequency modulation atomic force microscopy (FM-AFM) in liquid. Individual α-helices at the surface of a tubulin protofilament were imaged as periodic corrugations with a spacing of 0.53 nm, which corresponds to the common pitch of an α-helix backbone (0.54 nm). The identification of individual α-helices allowed us to determine the orientation of the deposited tubulin protofilament. As a result, C-terminal domains of tubulins were identified as protrusions with a height of 0.4 nm from the surface of the tubulin. The imaging mechanism for the observed subnanometer-scale contrasts is discussed in relation to the possible structures of the C-terminal domains. Because the C-terminal domains are chemically modified to regulate the interactions between tubulins and other biomolecules (e.g., motor proteins and microtubule-associated proteins), detailed structural information on individual C-terminal domains is valuable for understanding such regulation mechanisms. The results obtained in this study demonstrate that FM-AFM is capable of visualizing the structural variation of tubulins with subnanometer resolution. This is an important first step toward using FM-AFM to analyze the functions of tubulins.
机译:在这项研究中,我们通过在液体中执行调频原子力显微镜(FM-AFM)直接成像微管蛋白的亚纳米级结构。微管蛋白原丝表面的单个α螺旋成像为周期性波纹,间距为0.53 nm,对应于α螺旋骨架的共同间距(0.54 nm)。单个α螺旋的识别使我们能够确定沉积的微管蛋白原丝的方向。结果,微管蛋白的C末端结构域被鉴定为距微管蛋白表面0.4 nm高度的突起。有关C末端域的可能结构,讨论了所观察到的亚纳米级对比度的成像机制。由于对C末端域进行了化学修饰以调节微管蛋白与其他生物分子之间的相互作用(例如,运动蛋白和微管相关蛋白),因此有关各个C末端域的详细结构信息对于理解此类调控机制非常有价值。在这项研究中获得的结果表明,FM-AFM能够以亚纳米分辨率可视化微管蛋白的结构变异。这是使用FM-AFM分析微管蛋白功能的重要的第一步。

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