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膜蛋白晶体学在现代结构生物学时代。

Membrane protein crystallography in the era of modern structural biology.

机构信息

National Physical Laboratory, Hampton Road, Teddington TW11 0LW, U.K.

Research Complex at Harwell, Rutherford Appleton Laboratory, Harwell Science and Innovation Campus, Didcot OX11 0FA, U.K.

出版信息

Biochem Soc Trans. 2020 Dec 18;48(6):2505-2524. doi: 10.1042/BST20200066.

Abstract

The aim of structural biology has been always the study of biological macromolecules structures and their mechanistic behaviour at molecular level. To achieve its goal, multiple biophysical methods and approaches have become part of the structural biology toolbox. Considered as one of the pillars of structural biology, X-ray crystallography has been the most successful method for solving three-dimensional protein structures at atomic level to date. It is however limited by the success in obtaining well-ordered protein crystals that diffract at high resolution. This is especially true for challenging targets such as membrane proteins (MPs). Understanding structure-function relationships of MPs at the biochemical level is vital for medicine and drug discovery as they play critical roles in many cellular processes. Though difficult, structure determination of MPs by X-ray crystallography has significantly improved in the last two decades, mainly due to many relevant technological and methodological developments. Today, numerous MP crystal structures have been solved, revealing many of their mechanisms of action. Yet the field of structural biology has also been through significant technological breakthroughs in recent years, particularly in the fields of single particle electron microscopy (cryo-EM) and X-ray free electron lasers (XFELs). Here we summarise the most important advancements in the field of MP crystallography and the significance of these developments in the present era of modern structural biology.

摘要

结构生物学的目标一直是研究生物大分子的结构及其在分子水平上的机械行为。为了实现这一目标,多种生物物理方法和手段已成为结构生物学工具包的一部分。X 射线晶体学被认为是结构生物学的支柱之一,迄今为止,它是解决原子水平三维蛋白质结构的最成功方法。然而,它受到成功获得高分辨率衍射的有序蛋白质晶体的限制。对于膜蛋白 (MP) 等具有挑战性的靶标尤其如此。了解 MP 在生化水平上的结构-功能关系对于医学和药物发现至关重要,因为它们在许多细胞过程中发挥着关键作用。尽管困难重重,但 X 射线晶体学测定 MP 的结构在过去二十年中已有显著改善,主要得益于许多相关的技术和方法学的发展。如今,已经解决了许多 MP 的晶体结构,揭示了它们的许多作用机制。然而,近年来结构生物学领域也取得了重大的技术突破,特别是在单颗粒电子显微镜 (cryo-EM) 和 X 射线自由电子激光 (XFELs) 领域。在这里,我们总结了 MP 晶体学领域的最重要进展,以及这些发展在现代结构生物学时代的意义。

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