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用于生物学结构与动力学研究的X射线自由电子激光

XFELs for structure and dynamics in biology.

作者信息

Spence J C H

机构信息

Department of Physics, Arizona State University, Tempe, AZ 85287-1504, USA.

出版信息

IUCrJ. 2017 May 10;4(Pt 4):322-339. doi: 10.1107/S2052252517005760. eCollection 2017 Jul 1.

Abstract

The development and application of the free-electron X-ray laser (XFEL) to structure and dynamics in biology since its inception in 2009 are reviewed. The research opportunities which result from the ability to outrun most radiation-damage effects are outlined, and some grand challenges are suggested. By avoiding the need to cool samples to minimize damage, the XFEL has permitted atomic resolution imaging of molecular processes on the 100 fs timescale under near-physiological conditions and in the correct thermal bath in which molecular machines operate. Radiation damage, comparisons of XFEL and synchrotron work, single-particle diffraction, fast solution scattering, pump-probe studies on photosensitive proteins, mix-and-inject experiments, caged molecules, pH jump and other reaction-initiation methods, and the study of molecular machines are all discussed. Sample-delivery methods and data-analysis algorithms for the various modes, from serial femtosecond crystallo-graphy to fast solution scattering, fluctuation X-ray scattering, mixing jet experiments and single-particle diffraction, are also reviewed.

摘要

本文综述了自2009年自由电子X射线激光(XFEL)问世以来在生物学结构与动力学方面的发展及应用。概述了其因能够超越大多数辐射损伤效应而带来的研究机遇,并提出了一些重大挑战。通过无需冷却样品以最小化损伤,XFEL得以在近生理条件下以及分子机器运行的正确热浴环境中,在100飞秒时间尺度上对分子过程进行原子分辨率成像。文中还讨论了辐射损伤、XFEL与同步加速器工作的比较、单粒子衍射、快速溶液散射、对光敏蛋白的泵浦 - 探测研究、混合注入实验、笼形分子、pH跃变及其他反应引发方法,以及分子机器的研究。同时也综述了从飞秒串行晶体学到快速溶液散射、波动X射线散射、混合喷射实验和单粒子衍射等各种模式的样品输送方法和数据分析算法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/78cc/5571796/c8f6fa83962e/m-04-00322-fig1.jpg

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