Feng Xiangsong, Frank Joachim
Department of Biochemistry and Molecular Biophysics, Columbia University Irving Medical Center, New York, NY 10032.
Department of Biological Sciences, Columbia University, New York, NY 10027, USA.
bioRxiv. 2024 Dec 9:2024.12.08.627437. doi: 10.1101/2024.12.08.627437.
Time-resolved cryo-EM (TRCEM) makes it possible to provide structural and kinetic information on a reaction of biomolecules before the equilibrium is reached. Several TRCEM methods have been developed in the past to obtain key insights into the mechanism of action of molecules and molecular machines on the time scale of tens to hundreds of milliseconds, which is unattainable by the normal blotting method. Here we present our TRCEM setup utilizing a polydimethylsiloxane (PDMS)-based microfluidics chip assembly, comprising three components: a PDMS-based, internally SiO-coated micromixer, a glass-capillary microreactor, and a PDMS-based microsprayer for depositing the reaction product onto the EM grid. As we have demonstrated in recent experiments, this setup is capable of addressing problems of severe sample adsorption and ineffective mixing of fluids, and leads to highly reproducible results in applications to the study of translation. As an example, we used our TRCEM sample preparation method to investigate the molecular mechanism of ribosome recycling mediated by High frequency of lysogenization X (HflX), which demonstrated the efficacy of the TRCEM device and its capability to yield biologically significant, reproducible information. This protocol has promise to provide structural and kinetic information on pre-equilibrium intermediates in the 10 -1000 ms time range in applications to many other biological systems.
时间分辨冷冻电镜(TRCEM)能够在达到平衡之前提供生物分子反应的结构和动力学信息。过去已经开发了几种TRCEM方法,以便在几十到几百毫秒的时间尺度上深入了解分子和分子机器的作用机制,这是常规印迹方法无法实现的。在这里,我们展示了我们利用基于聚二甲基硅氧烷(PDMS)的微流控芯片组件的TRCEM装置,它由三个部分组成:一个基于PDMS且内部涂有SiO的微混合器、一个玻璃毛细管微反应器以及一个用于将反应产物沉积到电镜网格上的基于PDMS的微喷雾器。正如我们在最近的实验中所证明的,这种装置能够解决严重的样品吸附和流体混合无效的问题,并在翻译研究应用中产生高度可重复的结果。例如,我们使用我们的TRCEM样品制备方法来研究由高频溶原化X(HflX)介导的核糖体循环的分子机制,这证明了TRCEM装置的有效性及其产生具有生物学意义的、可重复信息的能力。该方案有望在应用于许多其他生物系统时,在10 - 1000毫秒的时间范围内提供关于平衡前中间体的结构和动力学信息。