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利用冷冻电镜技术进行原子分辨率的蛋白质结构测定。

Atomic-resolution protein structure determination by cryo-EM.

机构信息

Department of Structural Dynamics, MPI for Biophysical Chemistry, Göttingen, Germany.

出版信息

Nature. 2020 Nov;587(7832):157-161. doi: 10.1038/s41586-020-2833-4. Epub 2020 Oct 21.

Abstract

Single-particle electron cryo-microscopy (cryo-EM) is a powerful method for solving the three-dimensional structures of biological macromolecules. The technological development of transmission electron microscopes, detectors and automated procedures in combination with user-friendly image processing software and ever-increasing computational power have made cryo-EM a successful and expanding technology over the past decade. At resolutions better than 4 Å, atomic model building starts to become possible, but the direct visualization of true atomic positions in protein structure determination requires much higher (better than 1.5 Å) resolution, which so far has not been attained by cryo-EM. The direct visualization of atom positions is essential for understanding the mechanisms of protein-catalysed chemical reactions, and for studying how drugs bind to and interfere with the function of proteins. Here we report a 1.25 Å-resolution structure of apoferritin obtained by cryo-EM with a newly developed electron microscope that provides, to our knowledge, unprecedented structural detail. Our apoferritin structure has almost twice the 3D information content of the current world record reconstruction (at 1.54 Å resolution). We can visualize individual atoms in a protein, see density for hydrogen atoms and image single-atom chemical modifications. Beyond the nominal improvement in resolution, we also achieve a substantial improvement in the quality of the cryo-EM density map, which is highly relevant for using cryo-EM in structure-based drug design.

摘要

单颗粒电子低温冷冻透射显微镜(cryo-EM)是一种强大的方法,可用于解决生物大分子的三维结构问题。在过去的十年中,透射电子显微镜、探测器和自动化程序的技术发展,结合用户友好的图像处理软件和不断增加的计算能力,使 cryo-EM 成为一项成功且不断扩展的技术。在分辨率优于 4Å 的情况下,原子模型构建开始变得可行,但要直接可视化蛋白质结构测定中的真实原子位置,需要更高的分辨率(优于 1.5Å),迄今为止,cryo-EM 尚未达到这一分辨率。直接可视化原子位置对于理解蛋白质催化化学反应的机制以及研究药物如何与蛋白质结合并干扰其功能至关重要。在这里,我们报告了一种通过 cryo-EM 获得的脱铁蛋白的 1.25Å 分辨率结构,该结构使用了一种新开发的电子显微镜,据我们所知,该显微镜提供了前所未有的结构细节。我们的脱铁蛋白结构的三维信息含量几乎是当前世界纪录重建(在 1.54Å 分辨率下)的两倍。我们可以在蛋白质中可视化单个原子,看到氢原子的密度并对单个原子的化学修饰进行成像。除了分辨率的名义提高外,我们还实现了 cryo-EM 密度图质量的实质性提高,这对于基于结构的药物设计中使用 cryo-EM 非常重要。

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