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使用新型基于聚二甲基硅氧烷(PDMS)的微流控芯片组件的冷冻电镜中的时间分辨率及其在HflX介导的核糖体循环研究中的应用

Time resolution in cryo-EM using a novel PDMS-based microfluidic chip assembly and its application to the study of HflX-mediated ribosome recycling.

作者信息

Bhattacharjee Sayan, Feng Xiangsong, Maji Suvrajit, Dadhwal Prikshat, Zhang Zhening, Brown Zuben P, Frank Joachim

机构信息

Department of Biochemistry and Molecular Biophysics, Columbia University, New York, NY 10027, USA.

Department of Biological Sciences, Columbia University, New York, NY 10027, USA.

出版信息

bioRxiv. 2023 Jul 29:2023.01.25.525430. doi: 10.1101/2023.01.25.525430.

Abstract

The rapid kinetics of biological processes and associated short-lived conformational changes pose a significant challenge in attempts to structurally visualize biomolecules during a reaction in real time. Conventionally, on-pathway intermediates have been trapped using chemical modifications or reduced temperature, giving limited insights. Here we introduce a novel time-resolved cryo-EM method using a reusable PDMS-based microfluidic chip assembly with high reactant mixing efficiency. Coating of PDMS walls with SiO virtually eliminates non-specific sample adsorption and ensures maintenance of the stoichiometry of the reaction, rendering it highly reproducible. In an operating range from 10 to 1000 ms, the device allows us to follow in vitro reactions of biological molecules at resolution levels in the range of 3 Å. By employing this method, we show for the first time the mechanism of progressive HlfX-mediated splitting of the 70S ribosome in the presence of the GTP, via capture of three high-resolution reaction intermediates within 140 ms.

摘要

生物过程的快速动力学以及相关的短寿命构象变化,给实时结构可视化反应过程中的生物分子带来了重大挑战。传统上,通过化学修饰或降低温度来捕获反应途径中的中间体,提供的见解有限。在此,我们引入了一种新颖的时间分辨低温电子显微镜方法,该方法使用具有高反应物混合效率的基于聚二甲基硅氧烷(PDMS)的可重复使用微流控芯片组件。用SiO涂覆PDMS壁几乎消除了非特异性样品吸附,并确保了反应化学计量的维持,使其具有高度可重复性。在10到1000毫秒的操作范围内,该设备使我们能够在3 Å的分辨率水平上跟踪生物分子的体外反应。通过采用这种方法,我们首次展示了在GTP存在下,HlfX介导的70S核糖体逐步裂解的机制,这是通过在140毫秒内捕获三种高分辨率反应中间体实现的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e7e4/10395214/98cd783122f0/nihpp-2023.01.25.525430v2-f0001.jpg

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