固态弛豫色散技术的最新进展

IF 1.8 3区 化学 Q4 CHEMISTRY, PHYSICAL
Petra Rovó
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引用次数: 23

摘要

本文介绍了两种旋转框架(R1ρ)弛豫色散方法,即Bloch-McConnell弛豫色散和近旋转共振弛豫色散,这两种方法使得用魔角自旋核磁共振波谱法研究固体微秒时间尺度的构象波动成为可能。目标是为读者提供关键思想,实验描述和实际考虑与分析弛豫色散和定量构象交换所需的R1ρ测量相关。虽然重点是蛋白质运动,但许多提出的概念同样可以很好地适用于研究其他生物(如脂质,多糖,核酸),有机(如药物化合物)或无机分子(如金属有机框架)的微秒时间尺度动力学。本文综述了近年来固体核磁共振理论和实验研究对我们理解蛋白质运动的重要贡献。在这里,我们讨论了快速MAS应用的最新进展,这些应用使稀疏分布的构象态的观察和原子水平表征成为可能,否则其他实验方法无法实现。这种高能状态通常与蛋白质功能相关,如分子识别、配体结合或酶催化,以及与疾病相关的特性,如错误折叠和淀粉样蛋白形成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent advances in solid-state relaxation dispersion techniques

Recent advances in solid-state relaxation dispersion techniques

This review describes two rotating-frame (R1ρ) relaxation dispersion methods, namely the Bloch-McConnell Relaxation Dispersion and the Near-rotary Resonance Relaxation Dispersion, which enable the study of microsecond time-scale conformational fluctuations in the solid state using magic-angle-spinning nuclear magnetic resonance spectroscopy. The goal is to provide the reader with key ideas, experimental descriptions, and practical considerations associated with R1ρ measurements that are needed for analyzing relaxation dispersion and quantifying conformational exchange. While the focus is on protein motion, many presented concepts can be equally well adapted to study the microsecond time-scale dynamics of other bio- (e.g. lipids, polysaccharides, nucleic acids), organic (e.g. pharmaceutical compounds), or inorganic molecules (e.g., metal organic frameworks). This article summarizes the essential contributions made by recent theoretical and experimental solid-state NMR studies to our understanding of protein motion. Here we discuss recent advances in fast MAS applications that enable the observation and atomic level characterization of sparsely populated conformational states which are otherwise inaccessible for other experimental methods. Such high-energy states are often associated with protein functions such as molecular recognition, ligand binding, or enzymatic catalysis, as well as with disease-related properties such as misfolding and amyloid formation.

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来源期刊
CiteScore
5.30
自引率
9.40%
发文量
42
审稿时长
72 days
期刊介绍: The journal Solid State Nuclear Magnetic Resonance publishes original manuscripts of high scientific quality dealing with all experimental and theoretical aspects of solid state NMR. This includes advances in instrumentation, development of new experimental techniques and methodology, new theoretical insights, new data processing and simulation methods, and original applications of established or novel methods to scientific problems.
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