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在极快速魔角旋转下顺磁体系的13C和1H固态核磁共振进展。

Progress in 13C and 1H solid-state nuclear magnetic resonance for paramagnetic systems under very fast magic angle spinning.

作者信息

Wickramasinghe Nalinda P, Shaibat Medhat A, Jones Christopher R, Casabianca Leah B, de Dios Angel C, Harwood John S, Ishii Yoshitaka

机构信息

Department of Chemistry, University of Illinois at Chicago, 845 W Taylor St., Chicago, Illinois 60607, USA.

出版信息

J Chem Phys. 2008 Feb 7;128(5):052210. doi: 10.1063/1.2833574.

Abstract

High-resolution solid-state NMR (SSNMR) of paramagnetic systems has been largely unexplored because of various technical difficulties due to large hyperfine shifts, which have limited the success of previous studies through depressed sensitivity/resolution and lack of suitable assignment methods. Our group recently introduced an approach using "very fast" magic angle spinning (VFMAS) for SSNMR of paramagnetic systems, which opened an avenue toward routine analyses of small paramagnetic systems by (13)C and (1)H SSNMR [Y. Ishii et al., J. Am. Chem. Soc. 125, 3438 (2003); N. P. Wickramasinghe et al., ibid. 127, 5796 (2005)]. In this review, we discuss our recent progress in establishing this approach, which offers solutions to a series of problems associated with large hyperfine shifts. First, we demonstrate that MAS at a spinning speed of 20 kHz or higher greatly improves sensitivity and resolution in both (1)H and (13)C SSNMR for paramagnetic systems such as Cu(II)(DL-alanine)(2)H(2)O (Cu(DL-Ala)(2)) and Mn(acac)(3), for which the spectral dispersions due to (1)H hyperfine shifts reach 200 and 700 ppm, respectively. Then, we introduce polarization transfer methods from (1)H spins to (13)C spins with high-power cross polarization and dipolar insensitive nuclei enhanced by polarization transfer (INEPT) in order to attain further sensitivity enhancement and to correlate (1)H and (13)C spins in two-dimensional (2D) SSNMR for the paramagnetic systems. Comparison of (13)C VFMAS SSNMR spectra with (13)C solution NMR spectra revealed superior sensitivity in SSNMR for Cu(DL-Ala)(2), Cu(Gly)(2), and V(acac)(3). We discuss signal assignment methods using one-dimensional (1D) (13)C SSNMR (13)C-(1)H rotational echo double resonance (REDOR) and dipolar INEPT methods and 2D (13)C(1)H correlation SSNMR under VFMAS, which yield reliable assignments of (1)H and (13)C resonances for Cu(Ala-Thr). Based on the excellent sensitivity/resolution and signal assignments attained in the VFMAS approach, we discuss methods of elucidating multiple distance constraints in unlabeled paramagnetic systems by combing simple measurements of (13)C T(1) values and anisotropic hyperfine shifts. Comparison of experimental (13)C hyperfine shifts and ab initio calculated shifts for alpha- and beta-forms of Cu(8-quinolinol)(2) demonstrates that (13)C hyperfine shifts are parameters exceptionally sensitive to small structural difference between the two polymorphs. Finally, we discuss sensitivity enhancement with paramagnetic ion doping in (13)C SSNMR of nonparamagnetic proteins in microcrystals. Fast recycling with exceptionally short recycle delays matched to short (1)H T(1) of approximately 60 ms in the presence of Cu(II) doping accelerated 1D (13)C SSNMR for ubiquitin and lysozyme by a factor of 7.3-8.4 under fast MAS at a spinning speed of 40 kHz. It is likely that the VFMAS approach and use of paramagnetic interactions are applicable to a variety of paramagnetic systems and nonparamagnetic biomolecules.

摘要

由于大的超精细位移导致的各种技术难题,顺磁体系的高分辨率固态核磁共振(SSNMR)在很大程度上尚未得到充分探索。这些难题通过降低灵敏度/分辨率以及缺乏合适的归属方法,限制了以往研究的成功。我们小组最近引入了一种使用“极快速”魔角旋转(VFMAS)的方法用于顺磁体系的SSNMR,这为通过(13)C和(1)H SSNMR对小型顺磁体系进行常规分析开辟了一条途径[Y. Ishii等人,《美国化学会志》125,3438(2003);N. P. Wickramasinghe等人,同上,127,5796(2005)]。在这篇综述中,我们讨论了在建立这种方法方面我们最近取得的进展,该方法为一系列与大超精细位移相关的问题提供了解决方案。首先,我们证明对于顺磁体系如Cu(II)(DL - 丙氨酸)(2)H(2)O(Cu(DL - Ala)(2))和Mn(acac)(3),以20 kHz或更高的旋转速度进行MAS极大地提高了(1)H和(13)C SSNMR的灵敏度和分辨率,对于这些体系,由于(1)H超精细位移导致的谱线分散分别达到200和700 ppm。然后,我们引入从(1)H自旋到(13)C自旋的极化转移方法,采用高功率交叉极化和通过极化转移增强的偶极不敏感核(INEPT),以便在顺磁体系的二维(2D)SSNMR中进一步提高灵敏度并关联(1)H和(13)C自旋。将(13)C VFMAS SSNMR谱与(13)C溶液NMR谱进行比较,发现对于Cu(DL - Ala)(2)、Cu(Gly)(2)和V(acac)(3),SSNMR具有更高的灵敏度。我们讨论了使用一维(1D)(13)C SSNMR(13)C - (1)H旋转回波双共振(REDOR)和偶极INEPT方法以及VFMAS下的二维(13)C(1)H相关SSNMR的信号归属方法,这些方法为Cu(Ala - Thr)的(1)H和(13)C共振提供可靠的归属。基于VFMAS方法中获得的出色灵敏度/分辨率和信号归属,我们讨论了通过结合简单测量(13)C T(1)值和各向异性超精细位移来阐明未标记顺磁体系中多个距离约束的方法。对Cu(8 - 喹啉醇)(2)的α - 和β - 晶型的实验(13)C超精细位移与从头算计算位移的比较表明,(13)C超精细位移是对这两种多晶型之间微小结构差异异常敏感的参数。最后,我们讨论了在微晶中非顺磁蛋白质的(13)C SSNMR中通过顺磁离子掺杂提高灵敏度的问题。在存在Cu(II)掺杂的情况下,与约60 ms的短(1)H T(1)相匹配的极短循环延迟实现快速循环,在40 kHz的旋转速度下进行快速MAS时,将泛素和溶菌酶的一维(13)C SSNMR加速了7.3 - 8.4倍。VFMAS方法和顺磁相互作用的应用可能适用于各种顺磁体系和非顺磁生物分子。

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