Quantitative two-dimensional HSQC experiment for high magnetic field NMR spectrometers

被引:48
|
作者
Koskela, Harri [1 ]
Heikkila, Outi [2 ]
Kilpelainen, Ilkka [3 ]
Heikkinen, Sami [3 ]
机构
[1] Univ Helsinki, VERIFIN, FIN-00014 Helsinki, Finland
[2] Univ Helsinki, Folkhalsan Inst Genet, Folkhalsan Res Ctr, FIN-00014 Helsinki, Finland
[3] Univ Helsinki, Organ Chem Lab, FIN-00014 Helsinki, Finland
关键词
Quantitative two-dimensional NMR; (13)C offset compensation; Carr-Purcell-Meiboom-Gill sequence; Adiabatic inversion pulses; PM-BEBOP; Q-OCCAHSQC; Human blood plasma; BROAD-BAND INVERSION; MULTIPLICITY-EDITED HSQC; HUMAN BLOOD-PLASMA; ADIABATIC PULSES; H-1-NMR SPECTROSCOPY; COMPOSITE PULSES; POLARIZATION TRANSFER; POPULATION-INVERSION; REFOCUSING PULSES; SINGLE-SCAN;
D O I
10.1016/j.jmr.2009.09.021
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The finite RF power available on carbon channel in proton-carbon correlation experiments leads to non-uniform cross peak intensity response across carbon chemical shift range. Several classes of broadband pulses are available that alleviate this problem. Adiabatic pulses provide an excellent magnetization inversion over a large bandwidth, and very recently, novel phase-modulated pulses have been proposed that perform 900 and 1800 magnetization rotations with good offset tolerance. Here, we present a study how these broadband Pulses (adiabatic and phase-modulated) can improve quantitative application of the heteromolecular single quantum coherence (HSQC) experiment on high magnetic field strength NMR spectrometers. Theoretical and experimental examinations of the quantitative, offset-compensated. CPMG-adjusted HSQC (Q-OCCAHSQC) experiment are presented. The proposed experiment offers a formidable improvement to the offset performance; (13)C offset-dependent standard deviation of the peak intensity was below 6% in range of +/- 20 kHz. This covers the carbon chemical shift range of 150 ppm, which contains the protonated carbons excluding the aldehydes, for 22.3 T NMR magnets. A demonstration of the quantitative analysis of a fasting blood plasma sample obtained from a healthy volunteer is given. (C) 2009 Elsevier Inc. All rights reserved.
引用
收藏
页码:24 / 33
页数:10
相关论文
共 50 条
  • [11] QQ-HSQC: a quick, quantitative heteronuclear correlation experiment for NMR spectroscopy
    Peterson, Daniel J.
    Loening, Nikolaus M.
    MAGNETIC RESONANCE IN CHEMISTRY, 2007, 45 (11) : 937 - 941
  • [12] Rayleigh scattering of light by two-dimensional electrons in a high magnetic field
    V. E. Bisti
    L. V. Kulik
    A. S. Zhuravlev
    A. O. Shablya
    I. V. Kukushkin
    JETP Letters, 2014, 98 : 778 - 781
  • [13] Rayleigh Scattering of Light by Two-Dimensional Electrons in a High Magnetic Field
    Bisti, V. E.
    Kulik, L. V.
    Zhuravlev, A. S.
    Shablya, A. O.
    Kukushkin, I. V.
    JETP LETTERS, 2014, 98 (12) : 778 - 781
  • [14] Influence of magnetic field offsets on the resistance of magnetic barriers in two-dimensional electron gases: Experiment and simulations
    Hugger, S.
    Cerchez, M.
    Xu, H.
    Heinzel, T.
    PHYSICAL REVIEW B, 2007, 76 (19)
  • [15] TWO-DIMENSIONAL ZERO-FIELD NMR AND NQR
    THAYER, AM
    MILLAR, JM
    PINES, A
    CHEMICAL PHYSICS LETTERS, 1986, 129 (01) : 55 - 58
  • [16] Demagnetization field effects in two-dimensional solution NMR
    Levitt, MH
    CONCEPTS IN MAGNETIC RESONANCE, 1996, 8 (02): : 77 - 103
  • [17] Two-dimensional metal in a parallel magnetic field
    Gao, XPA
    Mills, AP
    Ramirez, AP
    Pfeiffer, LN
    West, KW
    PHYSICAL REVIEW LETTERS, 2002, 88 (16) : 4 - 166803
  • [18] Two-dimensional Pauli operator in a magnetic field
    Grinevich, P. G.
    Mironov, A. E.
    Novikov, S. P.
    LOW TEMPERATURE PHYSICS, 2011, 37 (9-10) : 829 - 833
  • [19] Two-dimensional Coulomb interactions in a magnetic field
    Xia, JB
    REVIEWS IN MATHEMATICAL PHYSICS, 1999, 11 (03) : 361 - 382
  • [20] Magnetic two-dimensional field effect transistor
    Raymond, A.
    Chaubet, C.
    Chenaud, B.
    Delgard, A.
    Bisotto, I.
    Harmand, J. C.
    Zawadzki, W.
    APPLIED PHYSICS LETTERS, 2017, 111 (23)