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Quantification of High-Resolution (1)H-[(13)C] NMR Spectra from Rat Brain Extracts

[Image: see text] NMR spectroscopy in combination with (13)C-labeled substrate infusion is a unique technique to obtain information about dynamic metabolic fluxes noninvasively in vivo. In many cases, the in vivo information content obtained during dynamic (13)C studies in rodents can be enhanced by...

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Autores principales: de Graaf, Robin A., Chowdhury, Golam M. I., Behar, Kevin L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4033633/
https://www.ncbi.nlm.nih.gov/pubmed/24773047
http://dx.doi.org/10.1021/ac5006926
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author de Graaf, Robin A.
Chowdhury, Golam M. I.
Behar, Kevin L.
author_facet de Graaf, Robin A.
Chowdhury, Golam M. I.
Behar, Kevin L.
author_sort de Graaf, Robin A.
collection PubMed
description [Image: see text] NMR spectroscopy in combination with (13)C-labeled substrate infusion is a unique technique to obtain information about dynamic metabolic fluxes noninvasively in vivo. In many cases, the in vivo information content obtained during dynamic (13)C studies in rodents can be enhanced by high-resolution (1)H-[(13)C] NMR spectroscopy on brain extracts. Previously, it has been shown that (1)H NMR spectra from rat brain extracts can be accurately quantified with a spectral fitting routine utilizing simulated basis sets using complete prior knowledge of chemical shifts and scalar couplings. The introduction of (13)C label into the various metabolites presents complications that demand modifications of the spectral fitting routine. As different multiplets within a given molecule accumulate various amounts of (13)C label, the fixed amplitude relationship between multiplets typical for (1)H NMR spectra must be abandoned. In addition, (13)C isotope effects lead to spectral multiplet patterns that become dependent on the amount of (13)C label accumulation, thereby preventing the use of a common basis set. Here a modified spectral fitting routine is presented that accommodates variable (13)C label accumulation and (13)C isotope effects. Spectral fitting results are quantitatively compared to manual integration on column-separated samples in which spectral overlap is minimized.
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spelling pubmed-40336332015-04-28 Quantification of High-Resolution (1)H-[(13)C] NMR Spectra from Rat Brain Extracts de Graaf, Robin A. Chowdhury, Golam M. I. Behar, Kevin L. Anal Chem [Image: see text] NMR spectroscopy in combination with (13)C-labeled substrate infusion is a unique technique to obtain information about dynamic metabolic fluxes noninvasively in vivo. In many cases, the in vivo information content obtained during dynamic (13)C studies in rodents can be enhanced by high-resolution (1)H-[(13)C] NMR spectroscopy on brain extracts. Previously, it has been shown that (1)H NMR spectra from rat brain extracts can be accurately quantified with a spectral fitting routine utilizing simulated basis sets using complete prior knowledge of chemical shifts and scalar couplings. The introduction of (13)C label into the various metabolites presents complications that demand modifications of the spectral fitting routine. As different multiplets within a given molecule accumulate various amounts of (13)C label, the fixed amplitude relationship between multiplets typical for (1)H NMR spectra must be abandoned. In addition, (13)C isotope effects lead to spectral multiplet patterns that become dependent on the amount of (13)C label accumulation, thereby preventing the use of a common basis set. Here a modified spectral fitting routine is presented that accommodates variable (13)C label accumulation and (13)C isotope effects. Spectral fitting results are quantitatively compared to manual integration on column-separated samples in which spectral overlap is minimized. American Chemical Society 2014-04-28 2014-05-20 /pmc/articles/PMC4033633/ /pubmed/24773047 http://dx.doi.org/10.1021/ac5006926 Text en Copyright © 2014 American Chemical Society
spellingShingle de Graaf, Robin A.
Chowdhury, Golam M. I.
Behar, Kevin L.
Quantification of High-Resolution (1)H-[(13)C] NMR Spectra from Rat Brain Extracts
title Quantification of High-Resolution (1)H-[(13)C] NMR Spectra from Rat Brain Extracts
title_full Quantification of High-Resolution (1)H-[(13)C] NMR Spectra from Rat Brain Extracts
title_fullStr Quantification of High-Resolution (1)H-[(13)C] NMR Spectra from Rat Brain Extracts
title_full_unstemmed Quantification of High-Resolution (1)H-[(13)C] NMR Spectra from Rat Brain Extracts
title_short Quantification of High-Resolution (1)H-[(13)C] NMR Spectra from Rat Brain Extracts
title_sort quantification of high-resolution (1)h-[(13)c] nmr spectra from rat brain extracts
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4033633/
https://www.ncbi.nlm.nih.gov/pubmed/24773047
http://dx.doi.org/10.1021/ac5006926
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