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Real-Time Pyruvate Chemical Conversion Monitoring Enabled by PHIP

[Image: see text] In recent years, parahydrogen-induced polarization side arm hydrogenation (PHIP-SAH) has been applied to hyperpolarize [1-(13)C]pyruvate and map its metabolic conversion to [1-(13)C]lactate in cancer cells. Developing on our recent MINERVA pulse sequence protocol, in which we have...

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Autores principales: Stevanato, Gabriele, Ding, Yonghong, Mamone, Salvatore, Jagtap, Anil P., Korchak, Sergey, Glöggler, Stefan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10021011/
https://www.ncbi.nlm.nih.gov/pubmed/36857108
http://dx.doi.org/10.1021/jacs.2c13198
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author Stevanato, Gabriele
Ding, Yonghong
Mamone, Salvatore
Jagtap, Anil P.
Korchak, Sergey
Glöggler, Stefan
author_facet Stevanato, Gabriele
Ding, Yonghong
Mamone, Salvatore
Jagtap, Anil P.
Korchak, Sergey
Glöggler, Stefan
author_sort Stevanato, Gabriele
collection PubMed
description [Image: see text] In recent years, parahydrogen-induced polarization side arm hydrogenation (PHIP-SAH) has been applied to hyperpolarize [1-(13)C]pyruvate and map its metabolic conversion to [1-(13)C]lactate in cancer cells. Developing on our recent MINERVA pulse sequence protocol, in which we have achieved 27% [1-(13)C]pyruvate carbon polarization, we demonstrate the hyperpolarization of [1,2-(13)C]pyruvate (∼7% polarization on each (13)C spin) via PHIP-SAH. By altering a single parameter in the pulse sequence, MINERVA enables the signal enhancement of C1 and/or C2 in [1,2-(13)C]pyruvate with the opposite phase, which allows for the simultaneous monitoring of different chemical reactions with enhanced spectral contrast or for the same reaction via different carbon sites. We first demonstrate the ability to monitor the same enzymatic pyruvate to lactate conversion at 7T in an aqueous solution, in vitro, and in-cell (HeLa cells) via different carbon sites. In a second set of experiments, we use the C1 and C2 carbon positions as spectral probes for simultaneous chemical reactions: the production of acetate, carbon dioxide, bicarbonate, and carbonate by reacting [1,2-(13)C]pyruvate with H(2)O(2) at a high temperature (55 °C). Importantly, we detect and characterize the intermediate 2-hydroperoxy-2-hydroxypropanoate in real time and at high temperature.
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spelling pubmed-100210112023-03-18 Real-Time Pyruvate Chemical Conversion Monitoring Enabled by PHIP Stevanato, Gabriele Ding, Yonghong Mamone, Salvatore Jagtap, Anil P. Korchak, Sergey Glöggler, Stefan J Am Chem Soc [Image: see text] In recent years, parahydrogen-induced polarization side arm hydrogenation (PHIP-SAH) has been applied to hyperpolarize [1-(13)C]pyruvate and map its metabolic conversion to [1-(13)C]lactate in cancer cells. Developing on our recent MINERVA pulse sequence protocol, in which we have achieved 27% [1-(13)C]pyruvate carbon polarization, we demonstrate the hyperpolarization of [1,2-(13)C]pyruvate (∼7% polarization on each (13)C spin) via PHIP-SAH. By altering a single parameter in the pulse sequence, MINERVA enables the signal enhancement of C1 and/or C2 in [1,2-(13)C]pyruvate with the opposite phase, which allows for the simultaneous monitoring of different chemical reactions with enhanced spectral contrast or for the same reaction via different carbon sites. We first demonstrate the ability to monitor the same enzymatic pyruvate to lactate conversion at 7T in an aqueous solution, in vitro, and in-cell (HeLa cells) via different carbon sites. In a second set of experiments, we use the C1 and C2 carbon positions as spectral probes for simultaneous chemical reactions: the production of acetate, carbon dioxide, bicarbonate, and carbonate by reacting [1,2-(13)C]pyruvate with H(2)O(2) at a high temperature (55 °C). Importantly, we detect and characterize the intermediate 2-hydroperoxy-2-hydroxypropanoate in real time and at high temperature. American Chemical Society 2023-03-01 /pmc/articles/PMC10021011/ /pubmed/36857108 http://dx.doi.org/10.1021/jacs.2c13198 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Stevanato, Gabriele
Ding, Yonghong
Mamone, Salvatore
Jagtap, Anil P.
Korchak, Sergey
Glöggler, Stefan
Real-Time Pyruvate Chemical Conversion Monitoring Enabled by PHIP
title Real-Time Pyruvate Chemical Conversion Monitoring Enabled by PHIP
title_full Real-Time Pyruvate Chemical Conversion Monitoring Enabled by PHIP
title_fullStr Real-Time Pyruvate Chemical Conversion Monitoring Enabled by PHIP
title_full_unstemmed Real-Time Pyruvate Chemical Conversion Monitoring Enabled by PHIP
title_short Real-Time Pyruvate Chemical Conversion Monitoring Enabled by PHIP
title_sort real-time pyruvate chemical conversion monitoring enabled by phip
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10021011/
https://www.ncbi.nlm.nih.gov/pubmed/36857108
http://dx.doi.org/10.1021/jacs.2c13198
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