GFT NMR, a new approach to rapidly obtain precise high-dimensional NMR spectral information

被引:314
作者
Kim, S [1 ]
Szyperski, T [1 ]
机构
[1] SUNY Buffalo, Dept Chem, NE Struct Genom Consortium, Buffalo, NY 14260 USA
关键词
D O I
10.1021/ja028197d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Widely used higher-dimensional Fourier transform (FT) NMR spectroscopy suffers from two major drawbacks: (i) The minimal measurement time of an N-dimensional FT NMR experiment, which is constrained by the need to sample N - 1 indirect dimensions, may exceed by far the measurement time required to achieve sufficient signal-to-noise ratios. (ii) The low resolution in the indirect dimensions severely limits the precision of the indirect chemical shift measurements. To relax on constraints arising from these drawbacks, we present here an acquisition scheme which is based on the phase-sensitive joint sampling of the indirect dimensions spanning a subspace of a conventional NMR experiment. This allows one to very rapidly obtain high-dimensional NMR spectral information. Because the phase-sensitive joint sampling yields subspectra containing "chemical shift multiplets", alternative data processing is required for editing the components of the multiplets. The subspectra are linearly combined using a so-called "G-matrix" and subsequently Fourier-transformed. The chemical shifts are multiply encoded in the resonance lines constituting the shift multiplets. This corresponds to performing statistically independent multiple measurements, and the chemical shifts can thus be obtained with high precision. To indicate that a combined G-matrix and FT is employed, we named the new approach "GFT NMR spectroscopy". GFT NMR opens new avenues to establish high-throughput protein structure determination, to investigate systems with a higher degree of chemical shift degeneracy, and to study dynamic phenomena such as slow folding of biological macromolecules in greater detail.
引用
收藏
页码:1385 / 1393
页数:9
相关论文
共 27 条
  • [1] [Anonymous], 2018, Protein nmr spectroscopy: principles and practice
  • [2] Triple resonance solid state NMR experiments with reduced dimensionality evolution periods
    Astrof, NS
    Lyon, CE
    Griffin, RG
    [J]. JOURNAL OF MAGNETIC RESONANCE, 2001, 152 (02) : 303 - 307
  • [3] (H)N(COCA)NH and (HN)under-bar(COCA)NH experiments for H-1-N-15 backbone assignments in C-13/N-15-labeled proteins
    Bracken, C
    Palmer, AG
    Cavanagh, J
    [J]. JOURNAL OF BIOMOLECULAR NMR, 1997, 9 (01) : 94 - 100
  • [4] DETERMINATION OF AN INITIAL SET OF NOE-DERIVED DISTANCE CONSTRAINTS FOR THE STRUCTURE DETERMINATION OF N-15/C-13-LABELED PROTEINS
    BRUTSCHER, B
    MORELLE, N
    CORDIER, F
    MARION, D
    [J]. JOURNAL OF MAGNETIC RESONANCE SERIES B, 1995, 109 (02): : 238 - 242
  • [5] DESIGN OF A COMPLETE SET OF 2-DIMENSIONAL TRIPLE-RESONANCE EXPERIMENTS FOR ASSIGNING LABELED PROTEINS
    BRUTSCHER, B
    SIMORRE, JP
    CAFFREY, MS
    MARION, D
    [J]. JOURNAL OF MAGNETIC RESONANCE SERIES B, 1994, 105 (01): : 77 - 82
  • [6] Cromsigt J, 2001, METHOD ENZYMOL, V338, P371
  • [7] Insights into protein folding from NMR
    Dyson, HJ
    Wright, PE
    [J]. ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 1996, 47 : 369 - 395
  • [8] EADIE WT, 1982, STAT METHODS EXPT PH
  • [9] Ernst R. R., 1987, PRINCIPLES NUCL MAGN
  • [10] PURE ABSORPTION GRADIENT ENHANCED HETERONUCLEAR SINGLE QUANTUM CORRELATION SPECTROSCOPY WITH IMPROVED SENSITIVITY
    KAY, LE
    KEIFER, P
    SAARINEN, T
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1992, 114 (26) : 10663 - 10665