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通过时间分辨冷冻电镜研究发现,两个核糖体亚基之间的初始连接在 9.4 毫秒内形成。

Initial bridges between two ribosomal subunits are formed within 9.4 milliseconds, as studied by time-resolved cryo-EM.

机构信息

Laboratory of Cellular and Molecular Basis of Diseases, Division of Translational Medicine, Wadsworth Center, New York State Department of Health, Albany, NY 12201;

Center for Integrated Electronics, Rensselaer Polytechnic Institute, Troy, NY 12180; and.

出版信息

Proc Natl Acad Sci U S A. 2014 Jul 8;111(27):9822-7. doi: 10.1073/pnas.1406744111. Epub 2014 Jun 23.

DOI:10.1073/pnas.1406744111
PMID:24958863
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4103372/
Abstract

Association of the two ribosomal subunits during the process of translation initiation is a crucial step of protein synthesis. The two subunits (30S and 50S) of the bacterial 70S ribosome are held together by 12 dynamic bridges involving RNA-RNA, RNA-protein, and protein-protein interactions. The process of bridge formation, such as whether all these bridges are formed simultaneously or in a sequential order, is poorly understood. To understand such processes, we have developed and implemented a class of microfluidic devices that mix two components to completion within 0.4 ms and spray the mixture in the form of microdroplets onto an electron microscopy grid, yielding a minimum reaction time of 9.4 ms before cryofixation. Using these devices, we have obtained cryo-EM data corresponding to reaction times of 9.4 and 43 ms and have determined 3D structures of ribosomal subunit association intermediates. Molecular analyses of the cryo-EM maps reveal that eight intersubunit bridges (bridges B1a, B1b, B2a, B2b, B3, B7a, B7b, and B8) form within 9.4 ms, whereas the remaining four bridges (bridges B2c, B4, B5, and B6) take longer than 43 ms to form, suggesting that bridges are formed in a stepwise fashion. Our approach can be used to characterize sequences of various dynamic functional events on complex macromolecular assemblies such as ribosomes.

摘要

在翻译起始过程中,两个核糖体亚基的结合是蛋白质合成的关键步骤。细菌 70S 核糖体的两个亚基(30S 和 50S)通过涉及 RNA-RNA、RNA-蛋白质和蛋白质-蛋白质相互作用的 12 个动态桥结合在一起。桥形成的过程(例如,所有这些桥是否同时形成或按顺序形成)知之甚少。为了理解这些过程,我们开发并实施了一类微流控设备,这些设备可以在 0.4 毫秒内将两种成分完全混合,并以微滴的形式将混合物喷射到电子显微镜网格上,从而在冷冻固定之前产生 9.4 毫秒的最小反应时间。使用这些设备,我们获得了对应于 9.4 和 43 毫秒反应时间的 cryo-EM 数据,并确定了核糖体亚基结合中间体的 3D 结构。对 cryo-EM 图谱的分子分析表明,在 9.4 毫秒内形成了八个亚基间桥(桥 B1a、B1b、B2a、B2b、B3、B7a、B7b 和 B8),而其余四个桥(桥 B2c、B4、B5 和 B6)需要超过 43 毫秒才能形成,这表明桥的形成是逐步进行的。我们的方法可用于表征核糖体等复杂大分子组装体上各种动态功能事件的序列。

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