Spatially encoded polarization transfer for improving the quantitative aspect of 1H–13C HSQC

Peak overlap hampers quantification in one-dimensional (1D) 1H NMR. 2D 1H -13C HSQC spectrum provides resolution superior to 1D 1H NMR. However, quantifying the components in a complex mixture with HSQC is not straightforward as in 1D 1H NMR. Quantification using HSQC could open up new avenues for s...

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Main Authors: Bikash Baishya, Rajeev Verma, Rashmi Parihar
Format: Article
Language:English
Published: Elsevier 2022-12-01
Series:Journal of Magnetic Resonance Open
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2666441022000334
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author Bikash Baishya
Rajeev Verma
Rashmi Parihar
author_facet Bikash Baishya
Rajeev Verma
Rashmi Parihar
author_sort Bikash Baishya
collection DOAJ
description Peak overlap hampers quantification in one-dimensional (1D) 1H NMR. 2D 1H -13C HSQC spectrum provides resolution superior to 1D 1H NMR. However, quantifying the components in a complex mixture with HSQC is not straightforward as in 1D 1H NMR. Quantification using HSQC could open up new avenues for studying metabolism. The variations in 1H–13C scalar couplings, T1, T2, and pulse imperfections contribute to this problem. Although T1 and T2 can be suitably chosen to minimize their deleterious effects, the differential polarization transfer for different resonances owing to large variations in 1H -13C couplings does not allow the cross-peak intensities to be directly correlated to the quantity of metabolites. Existing approaches are time-consuming. We show that spatial encoding of the polarization transfer delays in HSQC using sweep frequency pulses in the presence of a magnetic field gradient allows one to have a transfer of polarization from 1H to 13C insensitive to variations in 1H -13C couplings improving the quantitative aspect of HSQC. Comparisons to other QHSQC and perfected HSQC variants are also provided.
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spelling doaj.art-fb9ae5fa14c44f79aed6d7d7a5e421ee2022-12-22T04:40:30ZengElsevierJournal of Magnetic Resonance Open2666-44102022-12-0112100063Spatially encoded polarization transfer for improving the quantitative aspect of 1H–13C HSQCBikash Baishya0Rajeev Verma1Rashmi Parihar2Centre of Biomedical Research, SGPGIMS Campus, Raebareli Road, Lucknow, U.P. 226014, India; Corresponding author.Centre of Biomedical Research, SGPGIMS Campus, Raebareli Road, Lucknow, U.P. 226014, India; Department of Plant Sciences, M.J.P. Rohilkhand University, Bareilly 243006, IndiaCentre of Biomedical Research, SGPGIMS Campus, Raebareli Road, Lucknow, U.P. 226014, India; Department of Bioinformatics, Dr. A. P. J. Abdul Kalam Technical University, Lucknow, U.P. 226021, IndiaPeak overlap hampers quantification in one-dimensional (1D) 1H NMR. 2D 1H -13C HSQC spectrum provides resolution superior to 1D 1H NMR. However, quantifying the components in a complex mixture with HSQC is not straightforward as in 1D 1H NMR. Quantification using HSQC could open up new avenues for studying metabolism. The variations in 1H–13C scalar couplings, T1, T2, and pulse imperfections contribute to this problem. Although T1 and T2 can be suitably chosen to minimize their deleterious effects, the differential polarization transfer for different resonances owing to large variations in 1H -13C couplings does not allow the cross-peak intensities to be directly correlated to the quantity of metabolites. Existing approaches are time-consuming. We show that spatial encoding of the polarization transfer delays in HSQC using sweep frequency pulses in the presence of a magnetic field gradient allows one to have a transfer of polarization from 1H to 13C insensitive to variations in 1H -13C couplings improving the quantitative aspect of HSQC. Comparisons to other QHSQC and perfected HSQC variants are also provided.http://www.sciencedirect.com/science/article/pii/S2666441022000334HSQCSpatial encoding
spellingShingle Bikash Baishya
Rajeev Verma
Rashmi Parihar
Spatially encoded polarization transfer for improving the quantitative aspect of 1H–13C HSQC
Journal of Magnetic Resonance Open
HSQC
Spatial encoding
title Spatially encoded polarization transfer for improving the quantitative aspect of 1H–13C HSQC
title_full Spatially encoded polarization transfer for improving the quantitative aspect of 1H–13C HSQC
title_fullStr Spatially encoded polarization transfer for improving the quantitative aspect of 1H–13C HSQC
title_full_unstemmed Spatially encoded polarization transfer for improving the quantitative aspect of 1H–13C HSQC
title_short Spatially encoded polarization transfer for improving the quantitative aspect of 1H–13C HSQC
title_sort spatially encoded polarization transfer for improving the quantitative aspect of 1h 13c hsqc
topic HSQC
Spatial encoding
url http://www.sciencedirect.com/science/article/pii/S2666441022000334
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