Multidimensional NMR spectroscopy in a single scan

被引:13
作者
Gal, Maayan [1 ]
Frydman, Lucio [2 ]
机构
[1] Migal Galilee Inst Res Ltd, IL-11016 Kiryat Shmona, Israel
[2] Weizmann Inst Sci, Dept Chem Phys, IL-76100 Rehovot, Israel
基金
以色列科学基金会;
关键词
Multidimensional NMR; Ultrafast NMR; single-scan acquisitions; spatiotemporal encoding; ULTRAFAST 2D NMR; NUCLEAR-MAGNETIC-RESONANCE; REAL-TIME; INHOMOGENEOUS FIELDS; SENSITIVITY ENHANCEMENT; ISOTOPIC ENRICHMENTS; ADIABATIC PULSES; RESOLUTION; SPECTRA; RECONSTRUCTION;
D O I
10.1002/mrc.4271
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Multidimensional NMR has become one of the most widespread spectroscopic tools available to study diverse structural and functional aspects of organic and biomolecules. A main feature of multidimensional NMR is the relatively long acquisition times that these experiments demand. For decades, scientists have been working on a variety of alternatives that would enable NMR to overcome this limitation, and deliver its data in shorter acquisition times. Counting among these methodologies is the so-called ultrafast (UF) NMR approach, which in principle allows one to collect arbitrary multidimensional correlations in a single sub-second transient. By contrast to conventional acquisitions, a main feature of UF NMR is a spatiotemporal manipulation of the spins that imprints the chemical shift and/or J-coupling evolutions being sought, into a spatial pattern. Subsequent gradient-based manipulations enable the reading out of this information and its multidimensional correlation into patterns that are identical to those afforded by conventional techniques. The current review focuses on the fundamental principles of this spatiotemporal UF NMR manipulation, and on a few of the methodological extensions that this form of spectroscopy has undergone during the years. Copyright (C) 2015 John Wiley & Sons, Ltd.
引用
收藏
页码:971 / 985
页数:15
相关论文
共 56 条
[1]  
Akoka S., 2015, MAGN RESON IN PRESS
[2]   A simple approach for phase-modulated single-scan 2D NMR spectroscopy [J].
Andersen, NS ;
Köckenberger, W .
MAGNETIC RESONANCE IN CHEMISTRY, 2005, 43 (10) :795-797
[3]   Increase in signal-to-noise ratio of >10,000 times in liquid-state NMR [J].
Ardenkjaer-Larsen, JH ;
Fridlund, B ;
Gram, A ;
Hansson, G ;
Hansson, L ;
Lerche, MH ;
Servin, R ;
Thaning, M ;
Golman, K .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (18) :10158-10163
[4]   Fast Spatially Encoded 3D NMR Strategies for 13C-Based Metabolic Flux Analysis [J].
Boisseau, Renaud ;
Charrier, Benoit ;
Massou, Stephane ;
Portais, Jean-Charles ;
Akoka, Serge ;
Giraudeau, Patrick .
ANALYTICAL CHEMISTRY, 2013, 85 (20) :9751-9757
[5]  
Bracewell R. N., 1978, FOURIER TRANSFORM IT
[6]   Sensitivity enhancement of multidimensional NMR experiments by paramagnetic relaxation effects [J].
Cai, Sheng ;
Seu, Candace ;
Kovacs, Zoltan ;
Sherry, A. Dean ;
Chen, Yuan .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (41) :13474-13478
[7]   DIFFUSION OF WATER IN THE ENDOSPERM TISSUE OF WHEAT GRAINS AS STUDIED BY PULSED FIELD GRADIENT NUCLEAR MAGNETIC-RESONANCE [J].
CALLAGHAN, PT ;
JOLLEY, KW ;
LELIEVRE, J .
BIOPHYSICAL JOURNAL, 1979, 28 (01) :133-141
[8]  
Cavanagh W. J. F. John, 1995, PROTEIN NMR SPECTROS
[9]   Native-unlike Long-lived Intermediates along the Folding Pathway of the Amyloidogenic Protein β2-Microglobulin Revealed by Real-time Two-dimensional NMR [J].
Corazza, Alessandra ;
Rennella, Enrico ;
Schanda, Paul ;
Mimmi, Maria Chiara ;
Cutuil, Thomas ;
Raimondi, Sara ;
Giorgetti, Sofia ;
Fogolari, Federico ;
Viglino, Paolo ;
Frydman, Lucio ;
Gal, Maayan ;
Bellotti, Vittorio ;
Brutscher, Bernhard ;
Esposito, Gennaro .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2010, 285 (08) :5827-5835
[10]   APPLICATION OF FOURIER TRANSFORM SPECTROSCOPY TO MAGNETIC RESONANCE [J].
ERNST, RR ;
ANDERSON, WA .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1966, 37 (01) :93-+