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alpha- and beta-Tubulin Lattice of the Axonemal Microtubule Doublet and Binding Proteins Revealed by Single Particle Cryo-Electron Microscopy and Tomography

机译:单粒子低温电子显微镜和层析成像揭示轴突微管双峰和结合蛋白的α-和β-Tubulin晶格。

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Microtubule doublet (MTD) is the main skeleton of cilia/flagella. Many proteins, such as dyneins and radial spokes, bind to MTD, and generate or regulate force. While the structure of the reconstituted microtubule has been solved at atomic resolution, nature of the axonemal MTD is still unclear. There are a few hypotheses of the lattice arrangement of its alpha- and beta-tubulins, but it has not been described how dyneins and radial spokes bind to MTD. In this study, we analyzed the three-dimensional structure of Tetrahymena MTD at similar to 19 angstrom resolution by single particle cryo-electron microscopy. To identify alpha- and beta-tubulins, we combined image analysis of MTD with specific kinesin decoration. This work reveals that alpha-and beta-tubulins form a B-lattice arrangement in the entire MTD with a seam at the outer junction. We revealed the unique way in which inner arm dyneins, radial spokes, and proteins inside MTD bind and bridge protofilaments.
机译:微管双峰(MTD)是纤毛/鞭毛的主要骨架。许多蛋白质(例如动力蛋白和放射状辐条)会与MTD结合,并产生或调节作用力。虽然重构的微管的结构已在原子分辨率下解决,但轴突MTD的性质仍不清楚。关于其α-微管蛋白和β-微管蛋白的晶格排列有一些假设,但尚未描述动力蛋白和放射状辐条如何与MTD结合。在这项研究中,我们通过单粒子冷冻电子显微镜分析了四膜虫MTD的三维结构,其分辨率接近19埃。为了鉴定α-和β-微管蛋白,我们将MTD的图像分析与特定的驱动蛋白修饰相结合。这项工作揭示了α-和β-微管蛋白在整个MTD中形成B晶格排列,并在外接缝处形成接缝。我们揭示了MTD内臂的动力蛋白、,状辐条和蛋白质结合并桥接原丝的独特方式。

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