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Riboflavin compounds show NAD(P)H dependent quinone oxidoreductase-like quinone reducing activity

NAD(P)H-dependent quinone oxidoreductase (NQO) is an essential enzyme in living organisms and cells protecting them from oxidative stress. NQO reduces coenzyme Q (CoQ) using NAD(P)H as an electron donor. In the present study, we searched for coenzyme Q10 reducing activity from fractions of gel filtr...

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Autores principales: Nagase, Midori, Sakamoto, Miku, Amekura, Sakiko, Akiba, Sayaka, Kashiba, Misato, Yokoyama, Kenji, Yamamoto, Yorihiro, Fujisawa, Akio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: the Society for Free Radical Research Japan 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10390810/
https://www.ncbi.nlm.nih.gov/pubmed/37534093
http://dx.doi.org/10.3164/jcbn.22-140
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author Nagase, Midori
Sakamoto, Miku
Amekura, Sakiko
Akiba, Sayaka
Kashiba, Misato
Yokoyama, Kenji
Yamamoto, Yorihiro
Fujisawa, Akio
author_facet Nagase, Midori
Sakamoto, Miku
Amekura, Sakiko
Akiba, Sayaka
Kashiba, Misato
Yokoyama, Kenji
Yamamoto, Yorihiro
Fujisawa, Akio
author_sort Nagase, Midori
collection PubMed
description NAD(P)H-dependent quinone oxidoreductase (NQO) is an essential enzyme in living organisms and cells protecting them from oxidative stress. NQO reduces coenzyme Q (CoQ) using NAD(P)H as an electron donor. In the present study, we searched for coenzyme Q10 reducing activity from fractions of gel filtration-fractionated rat liver homogenate. In addition to the large-molecular-weight fraction containing NQO, CoQ10 reducing activity was also detected in a low-molecular-weight fraction. Furthermore, dicumarol, a conventional inhibitor of NQO1 (DT diaphorase), did not inhibit the reduction but quercetin did, suggesting that the activity was not due to NQO1. After further purification, the NADH-dependent CoQ10-reducing compound was identified as riboflavin. Riboflavin is an active substituent of other flavin compounds such as FAD and FMN. These flavin compounds also reduced not only CoQ homologues but also vitamin K homologues in the presence of NADH. The mechanism was speculated to work as follows: NADH reduces flavin compounds to the corresponding reduced forms, and subsequently, the reduced flavin compounds immediately reduce bio-quinones. Furthermore, the flavin-NADH system reduces CoQ10 bound with saposin B, which is believed to function as a CoQ transfer protein in vivo. This flavin-dependent CoQ10 reduction, therefore, may function in aqueous phases such as the cell cytosol and bodily fluids.
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spelling pubmed-103908102023-08-02 Riboflavin compounds show NAD(P)H dependent quinone oxidoreductase-like quinone reducing activity Nagase, Midori Sakamoto, Miku Amekura, Sakiko Akiba, Sayaka Kashiba, Misato Yokoyama, Kenji Yamamoto, Yorihiro Fujisawa, Akio J Clin Biochem Nutr Original Article NAD(P)H-dependent quinone oxidoreductase (NQO) is an essential enzyme in living organisms and cells protecting them from oxidative stress. NQO reduces coenzyme Q (CoQ) using NAD(P)H as an electron donor. In the present study, we searched for coenzyme Q10 reducing activity from fractions of gel filtration-fractionated rat liver homogenate. In addition to the large-molecular-weight fraction containing NQO, CoQ10 reducing activity was also detected in a low-molecular-weight fraction. Furthermore, dicumarol, a conventional inhibitor of NQO1 (DT diaphorase), did not inhibit the reduction but quercetin did, suggesting that the activity was not due to NQO1. After further purification, the NADH-dependent CoQ10-reducing compound was identified as riboflavin. Riboflavin is an active substituent of other flavin compounds such as FAD and FMN. These flavin compounds also reduced not only CoQ homologues but also vitamin K homologues in the presence of NADH. The mechanism was speculated to work as follows: NADH reduces flavin compounds to the corresponding reduced forms, and subsequently, the reduced flavin compounds immediately reduce bio-quinones. Furthermore, the flavin-NADH system reduces CoQ10 bound with saposin B, which is believed to function as a CoQ transfer protein in vivo. This flavin-dependent CoQ10 reduction, therefore, may function in aqueous phases such as the cell cytosol and bodily fluids. the Society for Free Radical Research Japan 2023-07 2023-05-16 /pmc/articles/PMC10390810/ /pubmed/37534093 http://dx.doi.org/10.3164/jcbn.22-140 Text en Copyright © 2023 JCBN https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivatives License (http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) ).
spellingShingle Original Article
Nagase, Midori
Sakamoto, Miku
Amekura, Sakiko
Akiba, Sayaka
Kashiba, Misato
Yokoyama, Kenji
Yamamoto, Yorihiro
Fujisawa, Akio
Riboflavin compounds show NAD(P)H dependent quinone oxidoreductase-like quinone reducing activity
title Riboflavin compounds show NAD(P)H dependent quinone oxidoreductase-like quinone reducing activity
title_full Riboflavin compounds show NAD(P)H dependent quinone oxidoreductase-like quinone reducing activity
title_fullStr Riboflavin compounds show NAD(P)H dependent quinone oxidoreductase-like quinone reducing activity
title_full_unstemmed Riboflavin compounds show NAD(P)H dependent quinone oxidoreductase-like quinone reducing activity
title_short Riboflavin compounds show NAD(P)H dependent quinone oxidoreductase-like quinone reducing activity
title_sort riboflavin compounds show nad(p)h dependent quinone oxidoreductase-like quinone reducing activity
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10390810/
https://www.ncbi.nlm.nih.gov/pubmed/37534093
http://dx.doi.org/10.3164/jcbn.22-140
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