蛋白质的固态MAS NMR共振分配方法

IF 7.3 2区 化学 Q2 CHEMISTRY, PHYSICAL
Victoria A. Higman
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引用次数: 22

摘要

通过核磁共振对蛋白质进行结构或功能研究的先决条件通常是共振的分配。自从近20年前首次通过固态MAS NMR进行蛋白质分配以来,各种不同的脉冲序列和方法已经被提出并继续发展。传统上,各种2D和3D 13C检测实验已被用于分配主链和侧链13C和15N共振。这些方法在整个领域得到了广泛的应用。但随着硬件的改变,更高的自旋频率和磁场变得可用,使用直接质子探测的能力正在开辟一套新的基于三共振实验的分配方法。本文综述了在不同氘化水平下使用碳检测和质子检测的固态MAS NMR分配方法。讨论了在困难的情况下使用不同的同位素标记方案作为辅助分配,以及支持手动和自动共振分配的软件包数量的增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Solid-state MAS NMR resonance assignment methods for proteins

Solid-state MAS NMR resonance assignment methods for proteins

The prerequisite to structural or functional studies of proteins by NMR is generally the assignment of resonances. Since the first assignment of proteins by solid-state MAS NMR was conducted almost two decades ago, a wide variety of different pulse sequences and methods have been proposed and continue to be developed. Traditionally, a variety of 2D and 3D 13C-detected experiments have been used for the assignment of backbone and side-chain 13C and 15N resonances. These methods have found widespread use across the field. But as the hardware has changed and higher spinning frequencies and magnetic fields are becoming available, the ability to use direct proton detection is opening up a new set of assignment methods based on triple-resonance experiments. This review describes solid-state MAS NMR assignment methods using carbon detection and proton detection at different deuteration levels. The use of different isotopic labelling schemes as an aid to assignment in difficult cases is discussed as well as the increasing number of software packages that support manual and automated resonance assignment.

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来源期刊
CiteScore
14.30
自引率
8.20%
发文量
12
审稿时长
62 days
期刊介绍: Progress in Nuclear Magnetic Resonance Spectroscopy publishes review papers describing research related to the theory and application of NMR spectroscopy. This technique is widely applied in chemistry, physics, biochemistry and materials science, and also in many areas of biology and medicine. The journal publishes review articles covering applications in all of these and in related subjects, as well as in-depth treatments of the fundamental theory of and instrumental developments in NMR spectroscopy.
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