结构生物学中的动力学和动力学:以DNA光解酶为例。

IF 7.2 2区 生物学 Q1 BIOPHYSICS
Keith Moffat
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引用次数: 0

摘要

所有的生化反应都直接涉及结构变化,这些变化可能发生在从飞秒到秒的很宽的时间尺度上。因此,了解作用机制需要确定所涉及的大分子的静态结构以及反应物和产物之间的短暂中间体。这需要中间产物的冷冻捕获,例如通过冷冻电子显微镜,或者通过时间分辨x射线晶体学在接近生理温度下直接确定活性体系的结构。存储环x射线源有效地覆盖了100秒左右的时间范围,揭示了蛋白质的三级和四级结构变化。硬x射线自由电子激光源发射的较短脉冲将该范围扩展到飞秒,涵盖了关键的化学反应,如电子转移,异构化,共价键断裂,以及光敏蛋白发色团及其蛋白质环境中的超快结构变化。两组基于fad的DNA修复酶(DNA光解酶)在1ps到100 μs的时间范围内对这些反应进行了时间分辨x射线研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamics and kinetics in structural biology: the example of DNA photolyase.

All biochemical reactions directly involve structural changes that may occur over a very wide range of timescales from femtoseconds to seconds. Understanding the mechanism of action thus requires determination of both the static structures of the macromolecule involved and short-lived intermediates between reactant and product. This requires either freeze-trapping of intermediates, for example by cryo-electron microscopy, or direct determination of structures in active systems at near-physiological temperature by time-resolved X-ray crystallography. Storage ring X-ray sources effectively cover the time range down to around 100 ps that reveal tertiary and quaternary structural changes in proteins. The briefer pulses emitted by hard X-ray free electron laser sources extend that range to femtoseconds, which covers critical chemical reactions such as electron transfer, isomerization, breaking of covalent bonds, and ultrafast structural changes in light-sensitive protein chromophores and their protein environment. These reactions are exemplified by the time-resolved X-ray studies by two groups of the FAD-based DNA repair enzyme, DNA photolyase, over the time range from 1 ps to 100 μs.

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来源期刊
Quarterly Reviews of Biophysics
Quarterly Reviews of Biophysics 生物-生物物理
CiteScore
12.90
自引率
1.60%
发文量
16
期刊介绍: Quarterly Reviews of Biophysics covers the field of experimental and computational biophysics. Experimental biophysics span across different physics-based measurements such as optical microscopy, super-resolution imaging, electron microscopy, X-ray and neutron diffraction, spectroscopy, calorimetry, thermodynamics and their integrated uses. Computational biophysics includes theory, simulations, bioinformatics and system analysis. These biophysical methodologies are used to discover the structure, function and physiology of biological systems in varying complexities from cells, organelles, membranes, protein-nucleic acid complexes, molecular machines to molecules. The majority of reviews published are invited from authors who have made significant contributions to the field, who give critical, readable and sometimes controversial accounts of recent progress and problems in their specialty. The journal has long-standing, worldwide reputation, demonstrated by its high ranking in the ISI Science Citation Index, as a forum for general and specialized communication between biophysicists working in different areas. Thematic issues are occasionally published.
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