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在低至中等魔角旋转频率下对完全质子化蛋白质进行质子检测的固态核磁共振光谱学。

Proton-detected solid-state NMR spectroscopy of fully protonated proteins at slow to moderate magic-angle spinning frequencies.

作者信息

Mote Kaustubh R, Madhu Perunthiruthy K

机构信息

TIFR Center for Interdisciplinary Sciences, Tata Institute of Fundamental Research Hyderabad, 21 Brundavan Colony, Narsingi, Hyderabad 500075, India.

TIFR Center for Interdisciplinary Sciences, Tata Institute of Fundamental Research Hyderabad, 21 Brundavan Colony, Narsingi, Hyderabad 500075, India; Department of Chemical Sciences, Tata Institute of Fundamental Research, Homi Bhabha Road, Colaba, Mumbai 400005, India.

出版信息

J Magn Reson. 2015 Dec;261:149-56. doi: 10.1016/j.jmr.2015.10.016. Epub 2015 Nov 9.

Abstract

(1)H-detection offers a substitute to the sensitivity-starved experiments often used to characterize biomolecular samples using magic-angle spinning solid-state NMR spectroscopy (MAS-ssNMR). To mitigate the effects of the strong (1)H-(1)H dipolar coupled network that would otherwise severely broaden resonances, high MAS frequencies (>40kHz) are often employed. Here, we have explored the alternative of stroboscopic (1)H-detection at moderate MAS frequencies of 5-30kHz using windowed version of supercycled-phase-modulated Lee-Goldburg homonuclear decoupling. We show that improved resolution in the (1)H dimension, comparable to that obtainable at high spinning frequencies of 40-60kHz without homonuclear decoupling, can be obtained in these experiments for fully protonated proteins. Along with detailed analysis of the performance of the method on the standard tri-peptide f-MLF, experiments on micro-crystalline GB1 and amyloid-β aggregates are used to demonstrate the applicability of these pulse-sequences to challenging biomolecular systems. With only two parameters to optimize, broadbanded performance of the homonuclear decoupling sequence, linear dependence of the chemical-shift scaling factor on resonance offset and a straightforward implementation under experimental conditions currently used for many biomolecular studies (viz. spinning frequencies and radio-frequency amplitudes), we expect these experiments to complement the current (13)C-detection based methods in assignments and characterization through chemical-shift mapping.

摘要

(1)氢检测为使用魔角旋转固态核磁共振光谱(MAS-ssNMR)表征生物分子样品时常用的灵敏度受限实验提供了一种替代方法。为了减轻强氢-氢偶极耦合网络的影响,否则该网络会严重展宽共振峰,通常采用高MAS频率(>40kHz)。在此,我们探索了在5-30kHz的中等MAS频率下使用超循环相位调制李-戈德堡同核去耦的加窗版本进行频闪氢检测的替代方法。我们表明,在这些针对完全质子化蛋白质的实验中,可以获得在氢维度上与在40-60kHz的高自旋频率下无同核去耦时可获得的分辨率相当的改进分辨率。除了对该方法在标准三肽f-MLF上的性能进行详细分析外,还对微晶GB1和淀粉样β聚集体进行了实验,以证明这些脉冲序列对具有挑战性的生物分子系统的适用性。由于同核去耦序列具有宽带性能,化学位移缩放因子对共振偏移呈线性依赖,并且在目前许多生物分子研究中使用的实验条件(即自旋频率和射频幅度)下易于实现,仅需优化两个参数,我们期望这些实验通过化学位移映射在归属和表征方面补充当前基于碳-13检测的方法。

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