Proton-Based Ultrafast Magic Angle Spinning Solid-State NMR Spectroscopy

被引:105
|
作者
Zhang, Rongchun
Mroue, Kamal H.
Ramamoorthy, Ayyalusamy [1 ]
机构
[1] Univ Michigan, Biophys Program, 930 North Univ Ave, Ann Arbor, MI 48109 USA
基金
美国国家卫生研究院;
关键词
CHEMICAL-SHIFT; HIGH-RESOLUTION; MAS FREQUENCIES; MAGNETIC-RESONANCE; ROTATING SOLIDS; KHZ MAS; PROTEINS; RFDR; SENSITIVITY; SEQUENCES;
D O I
10.1021/acs.accounts.7b00082
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
CONSPECTUS: Protons are vastly abundant in a wide range of exciting macromolecules and thus can be a powerful probe to investigate the structure and dynamics at atomic resolution using solid-state NMR (ssNMR) spectroscopy. Unfortunately, the high signal sensitivity, afforded by the high natural abundance and high gyromagnetic ratio of protons, is greatly compromised by severe line broadening due to the very strong H-1-H-1 dipolar couplings. As a result, protons are rarely used, in spite of the desperate need for enhancing the sensitivity of ssNMR to study a variety of systems that are not amenable for high resolution investigation using other techniques including X-ray crystallography, cryo-electron microscopy, and solution NMR spectroscopy. Thanks to the remarkable improvement in proton spectral resolution afforded by the significant advances in magic-angle-spinning (MAS) probe technology, H-1 ssNMR spectroscopy has recently attracted considerable attention in the structural and dynamics studies of various molecular systems. However, it still remains a challenge to obtain narrow H-1 spectral lines, especially from proteins, without resorting to deuteration. In this Account, we review recent proton-based ssNMR strategies that have been developed in our laboratory to further improve proton spectral resolution without resorting to chemical deuteration for the purposes of gaining atomistic-level insights into molecular structures of various crystalline solid systems, using small molecules and peptides as illustrative examples. The proton spectral resolution enhancement afforded by the ultrafast MAS frequencies up to 120 kHz is initially discussed, followed by a description of an ensemble of multidimensional NMR pulse sequences, all based on proton detection, that have been developed to obtain in-depth information from dipolar couplings and chemical shift anisotropy (CSA). Simple single channel multidimensional proton NMR experiments could be performed to probe the proximity of protons for structure determination using H-1-H-1 dipolar couplings and to evaluate the changes in chemical environments as well as the relative orientation to the external magnetic field using proton CSA. Due to the boost in signal sensitivity enabled by proton detection under ultrafast MAS, by virtue of high proton natural abundance and gyromagnetic ratio, proton-detected multidimensional experiments involving low-gamma nuclei can now be accomplished within a reasonable time, while the higher dimension also offers additional resolution enhancement. In addition, the application of proton-based ssNMR spectroscopy under ultrafast MAS in various challenging and crystalline systems is also presented. Finally, we briefly discuss the limitations and challenges pertaining to proton-based ssNMR spectroscopy under ultrafast MAS conditions, such as the presence of high-order dipolar couplings, friction-induced sample heating, and limited sample volume. Although there are still a number of challenges that must be circumvented by further developments in radio frequency pulse sequences, MAS probe technology and approaches to prepare NMR-friendly samples, proton-based ssNMR has already gained much popularity in various research domains, especially in proteins where uniform or site-selective deuteration can be relatively easily achieved. In addition, implementation of the recently developed fast data acquisition approaches would also enable further developments in the design and applications of proton-based ultrafast MAS multidimensional ssNMR techniques.
引用
收藏
页码:1105 / 1113
页数:9
相关论文
共 50 条
  • [31] Studying dynamics by magic-angle spinning solid-state NMR spectroscopy: Principles and applications to biomolecules
    Schanda, Paul
    Ernst, Matthias
    PROGRESS IN NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY, 2016, 96 : 1 - 46
  • [32] Investigation of the intumescence mechanism of geopolymers by solid-state Magic Angle Spinning NMR
    Yang, Qi
    Davy, Catherine A.
    Sarazin, Johan
    Bourbigot, Serge
    Fontaine, Gaelle
    CONSTRUCTION AND BUILDING MATERIALS, 2024, 448
  • [33] Magic-angle-spinning solid-state NMR applied to polypeptides and proteins
    Hughes, CE
    Baldus, M
    ANNUAL REPORTS ON NMR SPECTROSCOPY, VOL 55, 2005, 55 : 121 - 158
  • [34] Magic angle spinning (MAS) NMR linewidths in the presence of solid-state dynamics
    Thrippleton, Michael J.
    Cutajar, Marica
    Wimperis, Stephen
    CHEMICAL PHYSICS LETTERS, 2008, 452 (4-6) : 233 - 238
  • [35] Sealing Effect of Magic-Angle-Spinning Rotors in Solid-State NMR
    Hayashi, Shigenobu
    ANALYTICAL SCIENCES, 2009, 25 (01) : 133 - 136
  • [36] CHARACTERIZATION OF TRANSITIONAL ALUMINA BY SOLID-STATE MAGIC ANGLE SPINNING ALUMINUM NMR
    JOHN, CS
    ALMA, NCM
    HAYS, GR
    APPLIED CATALYSIS, 1983, 6 (03): : 341 - 346
  • [37] Sealing Effect of Magic-Angle-Spinning Rotors in Solid-State NMR
    Shigenobu Hayashi
    Analytical Sciences, 2009, 25 : 133 - 136
  • [38] Structure and Dynamics of Membrane Proteins by Magic Angle Spinning Solid-State NMR
    McDermott, Ann
    ANNUAL REVIEW OF BIOPHYSICS, 2009, 38 : 385 - 403
  • [39] Improved magnetization transfer in solid-state NMR with fast magic angle spinning
    Weingarth, Markus
    Demco, Dan E.
    Bodenhausen, Geoffrey
    Tekely, Piotr
    CHEMICAL PHYSICS LETTERS, 2009, 469 (4-6) : 342 - 348
  • [40] Recent Advances in Magic-Angle Spinning Solid-State NMR of Proteins
    Ladizhansky, Vladimir
    ISRAEL JOURNAL OF CHEMISTRY, 2014, 54 (1-2) : 86 - 103