Zhang Rui, Nogales Eva
Life Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA; Howard Hughes Medical Institute, Department of Molecular and Cell Biology, University of California, Berkeley, CA 94720, USA.
J Struct Biol. 2015 Nov;192(2):245-54. doi: 10.1016/j.jsb.2015.09.015. Epub 2015 Sep 28.
Microtubules (MTs) are cylindrical polymers of αβ-tubulin that display pseudo-helical symmetry due to the presence of a lattice seam of heterologous lateral contacts. The structural similarity between α- and β-tubulin makes it difficult to computationally distinguish them in the noisy cryo-EM images, unless a marker protein for the tubulin dimer, such as kinesin motor domain, is present. We have developed a new data processing protocol that can accurately determine αβ-tubulin register and seam location for MT segments. Our strategy can deal with difficult situations, where the marker protein is relatively small or the decoration of marker protein is sparse. Using this new seam-search protocol, combined with movie processing for data from a direct electron detection camera, we were able to determine the cryo-EM structures of MT at 3.5 Å resolution in different functional states. The successful distinction of α- and β-tubulin allowed us to visualize the nucleotide state at the E-site and the configuration of lateral contacts at the seam.
微管(MTs)是由αβ-微管蛋白组成的圆柱形聚合物,由于存在异源横向接触的晶格缝,呈现出假螺旋对称性。α-和β-微管蛋白之间的结构相似性使得在有噪声的冷冻电镜图像中通过计算区分它们变得困难,除非存在微管蛋白二聚体的标记蛋白,如驱动蛋白运动结构域。我们开发了一种新的数据处理协议,该协议可以准确确定MT片段的αβ-微管蛋白配准和缝位置。我们的策略可以应对标记蛋白相对较小或标记蛋白修饰稀疏的困难情况。使用这种新的缝搜索协议,并结合对来自直接电子检测相机的数据进行电影处理,我们能够在3.5 Å分辨率下确定处于不同功能状态的MT的冷冻电镜结构。α-和β-微管蛋白的成功区分使我们能够可视化E位点的核苷酸状态和缝处横向接触的构型。