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拉曼光学活性揭示的生物分子结构中的“精心无序”。

'A careful disorderliness' in biomolecular structure revealed by Raman optical activity.

机构信息

Department of Chemistry, University of Glasgow, Glasgow G12 8QQ, UK.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2023 Nov 5;300:122959. doi: 10.1016/j.saa.2023.122959. Epub 2023 May 31.

Abstract

Following its first observation 50 years ago Raman optical activity (ROA), which refers to a circular polarization dependence of Raman scattering from chiral molecules, has evolved into a powerful chiroptical spectroscopy for studying a large range of biomolecules in aqueous solution. Among other things ROA provides information about motif and fold as well as secondary structure of proteins; structure of carbohydrates and nucleic acids; polypeptide and carbohydrate structure of intact glycoproteins; and protein and nucleic acid structure of intact viruses. Quantum chemical simulations of observed Raman optical activity spectra can provide complete three-dimensional structures of biomolecules, together with information about conformational dynamics. This article reviews how ROA has provided new insight into the structure of unfolded/disordered states and sequences, ranging from the complete disorder of the random coil to the more controlled type of disorder exemplified by poly L-proline II helix in proteins, high mannose glycan chains in glycoproteins and constrained dynamic states of nucleic acids. Possible roles for this 'careful disorderliness' in biomolecular function, misfunction and disease are discussed, especially amyloid fibril formation.

摘要

50 年前首次观察到拉曼光学活性(ROA)以来,它指的是手性分子的拉曼散射的圆偏振依赖性,已经发展成为研究水溶液中大量生物分子的强大手性光谱学方法。ROA 除其他外,提供有关蛋白质的基序和折叠以及二级结构的信息;碳水化合物和核酸的结构;完整糖蛋白的多肽和碳水化合物结构;以及完整病毒的蛋白质和核酸结构。观察到的拉曼光学活性光谱的量子化学模拟可以提供生物分子的完整三维结构,并提供有关构象动力学的信息。本文综述了 ROA 如何为未折叠/无序状态和序列的结构提供新的见解,范围从完全无序的无规卷曲到蛋白质中更受控制的无序类型,例如聚 L-脯氨酸 II 螺旋、糖蛋白中的高甘露糖聚糖链和核酸的约束动态状态。讨论了这种“精心的无序”在生物分子功能、功能障碍和疾病中的可能作用,特别是淀粉样纤维的形成。

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