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由于动态干扰导致的魔角旋转固态核磁共振中的微分线宽展

Differential line broadening in MAS solid-state NMR due to dynamic interference.

作者信息

Chevelkov Veniamin, Faelber Katja, Schrey Anna, Rehbein Kristina, Diehl Anne, Reif Bernd

机构信息

Leibniz-Forschungsinstitut für Molekulare Pharmakologie (FMP), Robert-Rössle-Str. 10, D-13125 Berlin, Germany, and Charité Universitätsmedizin, D-10115 Berlin, Germany.

出版信息

J Am Chem Soc. 2007 Aug 22;129(33):10195-200. doi: 10.1021/ja072024c. Epub 2007 Jul 31.

Abstract

Many MAS (magic angle spinning) solid-state NMR investigations of biologically relevant protein samples are hampered by poor resolution, particularly in the 15N chemical shift dimension. We show that dynamics in the nanosecond-microsecond time scale in solid-state samples can induce significant line broadening of 15N resonances in solid-state NMR experiments. Averaging of 15NH(alpha/beta) multiplet components due to 1H decoupling induces effective relaxation of the 15N coherence in case the N-H spin pair undergoes significant motion. High resolution solid-state NMR spectra can then only be recorded by application of TROSY (Transverse Relaxation Optimized Spectroscopy) type techniques which select the narrow component of the multiplet pattern. We speculate that this effect has been the major obstacle to the NMR spectroscopic characterization of many membrane proteins and fibrillar aggregates so far. Only in very favorable cases, where dynamics are either absent or very fast (picosecond), high-resolution spectra were obtained. We expect that this approach which requires intense deuteration will have a significant impact on the quality and the rate at which solid-state NMR spectroscopic investigations will emerge in the future.

摘要

许多针对与生物相关的蛋白质样品的魔角旋转(MAS)固态核磁共振研究都受到分辨率差的阻碍,尤其是在15N化学位移维度上。我们表明,固态样品中纳秒至微秒时间尺度的动力学可在固态核磁共振实验中导致15N共振峰显著变宽。在N-H自旋对发生显著运动的情况下,由于1H去耦导致的15NH(α/β)多重峰组分的平均化会引起15N相干性的有效弛豫。然后,只有通过应用横向弛豫优化谱(TROSY)类型的技术,选择多重峰模式的窄组分,才能记录高分辨率的固态核磁共振谱。我们推测,到目前为止,这种效应一直是许多膜蛋白和纤维状聚集体的核磁共振光谱表征的主要障碍。只有在非常有利的情况下,即不存在动力学或动力学非常快(皮秒)时,才能获得高分辨率谱。我们预计,这种需要强烈氘代的方法将对未来固态核磁共振光谱研究出现的质量和速度产生重大影响。

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