volume 52 issue 7 pages 358-369

Probing signal amplification by reversible exchange using an NMR flow system

Ryan E. Mewis 1
Kevin D Atkinson 1
Michael Cowley 1
G. Green 1
Richard A Green 1
Louise A R Highton 1
David Kilgour 2
Lyrelle S Lloyd 1
Joost A B Lohman 3
David C Williamson 1
2
 
Bruker BioSpin GmbH; Silberstreifen 4 Rheinstetten 76287 Germany
3
 
Bruker UK Limited; Banner Lane Coventry CV4 9GH UK
Publication typeJournal Article
Publication date2014-05-06
scimago Q3
wos Q3
SJR0.360
CiteScore4.1
Impact factor1.4
ISSN07491581, 1097458X
PubMed ID:  24801201
General Chemistry
General Materials Science
Abstract
Hyperpolarization methods are used in NMR to overcome its inherent sensitivity problem. Herein, the biologically relevant target nicotinamide is polarized by the hyperpolarization technique signal amplification by reversible exchange. We illustrate how the polarization transfer field, and the concentrations of parahydrogen, the polarization-transfer-catalyst and substrate can be used to maximize signal amplification by reversible exchange effectiveness by reference to the first-order spin system of this target. The catalyst is shown to be crucial in this process, first by facilitating the transfer of hyperpolarization from parahydrogen to nicotinamide and then by depleting the resulting polarized states through further interaction. The 15 longitudinal one, two, three and four spin order terms produced are rigorously identified and quantified using an automated flow apparatus in conjunction with NMR pulse sequences based on the only parahydrogen spectroscopy protocol. The rates of build-up of these terms were shown to follow the order four~three > two > single spin; this order parallels their rates of relaxation. The result of these competing effects is that the less-efficiently formed single-spin order terms dominate at the point of measurement with the two-spin terms having amplitudes that are an order of magnitude lower. We also complete further measurements to demonstrate that (13)C NMR spectra can be readily collected where the long-lived quaternary (13)C signals appear with significant intensity. These are improved upon by using INEPT. In summary, we dissect the complexity of this method, highlighting its benefits to the NMR community and its applicability for high-sensitivity magnetic resonance imaging detection in the future.
Found 
Found 

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GOST Copy
Mewis R. E. et al. Probing signal amplification by reversible exchange using an NMR flow system // Magnetic Resonance in Chemistry. 2014. Vol. 52. No. 7. pp. 358-369.
GOST all authors (up to 50) Copy
Mewis R. E., Atkinson K. D., Cowley M., Duckett S. G., Green G., Green R. A., Highton L. A. R., Kilgour D., Lloyd L. S., Lohman J. A. B., Williamson D. C. Probing signal amplification by reversible exchange using an NMR flow system // Magnetic Resonance in Chemistry. 2014. Vol. 52. No. 7. pp. 358-369.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1002/mrc.4073
UR - https://doi.org/10.1002/mrc.4073
TI - Probing signal amplification by reversible exchange using an NMR flow system
T2 - Magnetic Resonance in Chemistry
AU - Mewis, Ryan E.
AU - Atkinson, Kevin D
AU - Cowley, Michael
AU - Duckett, Simon G.
AU - Green, G.
AU - Green, Richard A
AU - Highton, Louise A R
AU - Kilgour, David
AU - Lloyd, Lyrelle S
AU - Lohman, Joost A B
AU - Williamson, David C
PY - 2014
DA - 2014/05/06
PB - Wiley
SP - 358-369
IS - 7
VL - 52
PMID - 24801201
SN - 0749-1581
SN - 1097-458X
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2014_Mewis,
author = {Ryan E. Mewis and Kevin D Atkinson and Michael Cowley and Simon G. Duckett and G. Green and Richard A Green and Louise A R Highton and David Kilgour and Lyrelle S Lloyd and Joost A B Lohman and David C Williamson},
title = {Probing signal amplification by reversible exchange using an NMR flow system},
journal = {Magnetic Resonance in Chemistry},
year = {2014},
volume = {52},
publisher = {Wiley},
month = {may},
url = {https://doi.org/10.1002/mrc.4073},
number = {7},
pages = {358--369},
doi = {10.1002/mrc.4073}
}
MLA
Cite this
MLA Copy
Mewis, Ryan E., et al. “Probing signal amplification by reversible exchange using an NMR flow system.” Magnetic Resonance in Chemistry, vol. 52, no. 7, May. 2014, pp. 358-369. https://doi.org/10.1002/mrc.4073.