Zero-quantum stochastic dipolar recoupling in solid state nuclear magnetic resonance

被引:0
|
作者
机构
[1] Qiang, Wei
[2] Tycko, Robert
来源
Tycko, R. (robertty@mail.nih.gov) | 1600年 / American Institute of Physics Inc.卷 / 137期
基金
美国国家卫生研究院;
关键词
Polarization - Chemical shift - Quantum theory - Magnetic couplings - Stochastic systems - Spin dynamics - Amino acids - Magnetism;
D O I
暂无
中图分类号
学科分类号
摘要
We present the theoretical description and experimental demonstration of a zero-quantum stochastic dipolar recoupling (ZQ-SDR) technique for solid state nuclear magnetic resonance (NMR) studies of 13C-labeled molecules, including proteins, under magic-angle spinning (MAS). The ZQ-SDR technique combines zero-quantum recoupling pulse sequence blocks with randomly varying chemical shift precession periods to create randomly amplitude- and phase-modulated effective homonuclear magnetic dipole-dipole couplings. To a good approximation, couplings between different 13C spin pairs become uncorrelated under ZQ-SDR, leading to spin dynamics (averaged over many repetitions of the ZQ-SDR sequence) that are fully described by an orientation-dependent N × N polarization transfer rate matrix for an N-spin system, with rates that are inversely proportional to the sixth power of internuclear distances. Suppression of polarization transfers due to non-commutivity of pairwise couplings (i.e., dipolar truncation) does not occur under ZQ-SDR, as we show both analytically and numerically. Experimental demonstrations are reported for uniformly 13C-labeled L-valine powder (at 14.1 T and 28.00 kHz MAS), uniformly 13C-labeled protein GB1 in microcrystalline form (at 17.6 T and 40.00 kHz MAS), and partially labeled 13C-labeled protein GB1 (at 14.1 T and 40.00 kHz MAS). The experimental results verify that spin dynamics under ZQ-SDR are described accurately by rate matrices and suggest the utility of ZQ-SDR in structural studies of 13C-labeled solids. © 2012 U.S. Government.
引用
收藏
相关论文
共 50 条
  • [21] In vitro singlet state and zero-quantum encoded magnetic resonance spectroscopy: Illustration with N-acetyl-aspartate
    Pravdivtsev, Andrey N.
    Sonnichsen, Frank D.
    Hovener, Jan-Bernd
    PLOS ONE, 2020, 15 (10):
  • [22] Rotary resonance recoupling for half-integer quadrupolar nuclei in solid-state nuclear magnetic resonance spectroscopy
    Wi, S
    Logan, JW
    Sakellariou, D
    Walls, JD
    Pines, A
    JOURNAL OF CHEMICAL PHYSICS, 2002, 117 (15): : 7024 - 7033
  • [23] Quadrupolar-driven recoupling of homonuclear dipolar interactions in the nuclear magnetic resonance of rotating solids
    Edén, M
    Frydman, L
    JOURNAL OF CHEMICAL PHYSICS, 2001, 114 (09): : 4116 - 4123
  • [24] Efficient heteronuclear dipolar decoupling in solid-state nuclear magnetic resonance at rotary resonance conditions
    Paul, Subhradip
    Mithu, Venus Singh
    Kurur, Narayanan D.
    Madhu, P. K.
    JOURNAL OF MAGNETIC RESONANCE, 2010, 203 (01) : 199 - 202
  • [25] Solid state nuclear magnetic resonance
    Dybowski, C
    Bai, S
    ANALYTICAL CHEMISTRY, 2000, 72 (12) : 1R - 7R
  • [26] Solid State Nuclear Magnetic Resonance
    Andrew, E. Raymond
    SOLID STATE NUCLEAR MAGNETIC RESONANCE, 1992, 1 (01) : V - V
  • [27] Theory and applications of supercycled symmetry-based recoupling sequences in solid-state nuclear magnetic resonance
    Kristiansen, Per Eugen
    Carravetta, Marina
    van Beek, Jacco D.
    Lai, Wai Cheu
    Levitt, Malcolm H.
    JOURNAL OF CHEMICAL PHYSICS, 2006, 124 (23):
  • [28] Bimodal Floquet description of heteronuclear dipolar decoupling in solid-state nuclear magnetic resonance
    Leskes, Michal
    Thakur, Rajendra Singh
    Madhu, P. K.
    Kurur, Narayanan D.
    Vega, Shimon
    JOURNAL OF CHEMICAL PHYSICS, 2007, 127 (02):
  • [29] ZERO-QUANTUM SUPERCONDUCTING MAGNETIC SHIELDING APPARATUS AND METHOD
    CLEM, JR
    IEEE TRANSACTIONS ON MAGNETICS, 1983, 19 (03) : 1278 - 1281
  • [30] Fast high-resolution nuclear magnetic resonance spectroscopy through indirect zero-quantum coherence detection in inhomogeneous fields
    柯汉平
    陈浩
    林雁勤
    韦芝良
    蔡淑惠
    张志勇
    陈忠
    Chinese Physics B, 2014, 23 (06) : 162 - 168