5D solid-state NMR spectroscopy for facilitated resonance assignment

IF 1.3 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Alexander Klein, Suresh K. Vasa, Rasmus Linser
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引用次数: 0

Abstract

1H-detected solid-state NMR spectroscopy has been becoming increasingly popular for the characterization of protein structure, dynamics, and function. Recently, we showed that higher-dimensionality solid-state NMR spectroscopy can aid resonance assignments in large micro-crystalline protein targets to combat ambiguity (Klein et al., Proc. Natl. Acad. Sci. U.S.A. 2022). However, assignments represent both, a time-limiting factor and one of the major practical disadvantages within solid-state NMR studies compared to other structural-biology techniques from a very general perspective. Here, we show that 5D solid-state NMR spectroscopy is not only justified for high-molecular-weight targets but will also be a realistic and practicable method to streamline resonance assignment in small to medium-sized protein targets, which such methodology might not have been expected to be of advantage for. Using a combination of non-uniform sampling and the signal separating algorithm for spectral reconstruction on a deuterated and proton back-exchanged micro-crystalline protein at fast magic-angle spinning, direct amide-to-amide correlations in five dimensions are obtained with competitive sensitivity compatible with common hardware and measurement time commitments. The self-sufficient backbone walks enable efficient assignment with very high confidence and can be combined with higher-dimensionality sidechain-to-backbone correlations from protonated preparations into minimal sets of experiments to be acquired for simultaneous backbone and sidechain assignment. The strategies present themselves as potent alternatives for efficient assignment compared to the traditional assignment approaches in 3D, avoiding user misassignments derived from ambiguity or loss of overview and facilitating automation. This will ease future access to NMR-based characterization for the typical solid-state NMR targets at fast MAS.

Abstract Image

5D固态NMR光谱,用于促进共振分配。
1H检测的固态NMR光谱在表征蛋白质结构、动力学和功能方面越来越受欢迎。最近,我们表明,高维度固态NMR光谱可以帮助在大微晶蛋白质靶中进行共振分配,以对抗模糊性(Klein等人,Proc.Natl.Acad.Sci.U.SU.S.A.2022)。然而,从非常普遍的角度来看,与其他结构生物学技术相比,任务既是一个时间限制因素,也是固态NMR研究中的一个主要实际缺点。在这里,我们表明5D固态NMR光谱不仅适用于高分子量靶标,而且将是一种现实可行的方法,可以简化中小型蛋白质靶标的共振分配,而这种方法可能没有优势。使用非均匀采样和信号分离算法的组合,在快速魔角旋转下对氘化和质子反向交换的微晶蛋白进行光谱重建,获得了五个维度的直接酰胺-酰胺相关性,其灵敏度与常见硬件和测量时间承诺相兼容。自给自足的主链行走能够以非常高的置信度进行有效的分配,并且可以与从质子化制剂到最小实验集的更高维度的侧链到主链相关性相结合,以获得同时的主链和侧链分配。与3D中的传统分配方法相比,这些策略本身是高效分配的有力替代方案,避免了由于模糊或概览丢失而导致的用户分配错误,并促进了自动化。这将方便未来在快速MAS下对典型固态NMR靶标进行基于NMR的表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Biomolecular NMR
Journal of Biomolecular NMR 生物-光谱学
CiteScore
6.00
自引率
3.70%
发文量
19
审稿时长
6-12 weeks
期刊介绍: The Journal of Biomolecular NMR provides a forum for publishing research on technical developments and innovative applications of nuclear magnetic resonance spectroscopy for the study of structure and dynamic properties of biopolymers in solution, liquid crystals, solids and mixed environments, e.g., attached to membranes. This may include: Three-dimensional structure determination of biological macromolecules (polypeptides/proteins, DNA, RNA, oligosaccharides) by NMR. New NMR techniques for studies of biological macromolecules. Novel approaches to computer-aided automated analysis of multidimensional NMR spectra. Computational methods for the structural interpretation of NMR data, including structure refinement. Comparisons of structures determined by NMR with those obtained by other methods, e.g. by diffraction techniques with protein single crystals. New techniques of sample preparation for NMR experiments (biosynthetic and chemical methods for isotope labeling, preparation of nutrients for biosynthetic isotope labeling, etc.). An NMR characterization of the products must be included.
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