1H R1ρ relaxation dispersion experiments in aromatic side chains

IF 1.3 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Biomolecular NMR Pub Date : 2021-09-12 DOI:10.1007/s10858-021-00382-w
Matthias Dreydoppel, Roman J. Lichtenecker, Mikael Akke, Ulrich Weininger
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引用次数: 3

Abstract

Aromatic side chains are attractive probes of protein dynamic, since they are often key residues in enzyme active sites and protein binding sites. Dynamic processes on microsecond to millisecond timescales can be studied by relaxation dispersion experiments that attenuate conformational exchange contributions to the transverse relaxation rate by varying the refocusing frequency of applied radio-frequency fields implemented as either CPMG pulse trains or continuous spin-lock periods. Here we present an aromatic 1H R1ρ relaxation dispersion experiment enabling studies of two to three times faster exchange processes than achievable by existing experiments for aromatic side chains. We show that site-specific isotope labeling schemes generating isolated 1H–13C spin pairs with vicinal 2H–12C moieties are necessary to avoid anomalous relaxation dispersion profiles caused by Hartmann–Hahn matching due to the 3JHH couplings and limited chemical shift differences among 1H spins in phenylalanine, tyrosine and the six-ring moiety of tryptophan. This labeling pattern is sufficient in that remote protons do not cause additional complications. We validated the approach by measuring ring-flip kinetics in the small protein GB1. The determined rate constants, kflip, agree well with previous results from 13C R1ρ relaxation dispersion experiments, and yield 1H chemical shift differences between the two sides of the ring in good agreement with values measured under slow-exchange conditions. The aromatic1H R1ρ relaxation dispersion experiment in combination with the site-selective 1H–13C/2H–12C labeling scheme enable measurement of exchange rates up to kex = 2kflip = 80,000 s–1, and serve as a useful complement to previously developed 13C-based methods.

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芳香侧链中的1H R1ρ弛豫色散实验
芳香侧链通常是酶活性位点和蛋白质结合位点的关键残基,是蛋白质动力学的重要探针。在微秒到毫秒时间尺度上的动态过程可以通过弛豫色散实验来研究,该实验通过改变应用于CPMG脉冲序列或连续自旋锁定周期的射频场的重聚焦频率来衰减构象交换对横向弛豫速率的贡献。在这里,我们提出了一个芳香1H R1ρ弛豫分散实验,使研究的交换过程比现有的芳香侧链实验快两到三倍。我们发现,为了避免由于3JHH偶联和苯基丙氨酸、酪氨酸和色氨酸六环部分的1H自旋之间有限的化学位移差异而引起的哈特曼-哈恩匹配引起的异常弛豫色散分布,需要特定位点的同位素标记方案产生具有相邻2H-12C基团的孤立1H - 13c自旋对。这种标记模式是足够的,因为远程质子不会引起额外的并发症。我们通过测量小蛋白GB1的环翻转动力学来验证该方法。测定的速率常数kflip与先前的13C R1ρ弛豫色散实验结果吻合较好,环两侧的1H化学位移差与慢交换条件下的测量值吻合较好。芳香1h R1ρ弛豫色散实验与位点选择性1H-13C / 2H-12C标记方案相结合,可以测量高达kex = 2kflip = 80000 s-1的交换率,并作为先前开发的基于13c的方法的有用补充。
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.
期刊最新文献
Pitfalls in measurements of R1 relaxation rates of protein backbone 15N nuclei. Towards cost-effective side-chain isotope labelling of proteins expressed in human cells. Optimising in-cell NMR acquisition for nucleic acids. Transverse relaxation optimized spectroscopy of NH2 groups in glutamine and asparagine side chains of proteins. Micromolar fluoride contamination arising from glass NMR tubes and a simple solution for biomolecular applications
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