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Redox-dependent loss of flavin by mitochondria complex I is different in brain and heart

Pathologies associated with tissue ischemia/reperfusion (I/R) in highly metabolizing organs such as the brain and heart are leading causes of death and disability in humans. Molecular mechanisms underlying mitochondrial dysfunction during acute injury in I/R are tissue-specific, but their details ar...

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Autores principales: Yoval-Sánchez, Belem, Ansari, Fariha, James, Joel, Niatsetskaya, Zoya, Sosunov, Sergey, Filipenko, Peter, Tikhonova, Irina G., Ten, Vadim, Wittig, Ilka, Rafikov, Ruslan, Galkin, Alexander
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8861397/
https://www.ncbi.nlm.nih.gov/pubmed/35189550
http://dx.doi.org/10.1016/j.redox.2022.102258
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author Yoval-Sánchez, Belem
Ansari, Fariha
James, Joel
Niatsetskaya, Zoya
Sosunov, Sergey
Filipenko, Peter
Tikhonova, Irina G.
Ten, Vadim
Wittig, Ilka
Rafikov, Ruslan
Galkin, Alexander
author_facet Yoval-Sánchez, Belem
Ansari, Fariha
James, Joel
Niatsetskaya, Zoya
Sosunov, Sergey
Filipenko, Peter
Tikhonova, Irina G.
Ten, Vadim
Wittig, Ilka
Rafikov, Ruslan
Galkin, Alexander
author_sort Yoval-Sánchez, Belem
collection PubMed
description Pathologies associated with tissue ischemia/reperfusion (I/R) in highly metabolizing organs such as the brain and heart are leading causes of death and disability in humans. Molecular mechanisms underlying mitochondrial dysfunction during acute injury in I/R are tissue-specific, but their details are not completely understood. A metabolic shift and accumulation of substrates of reverse electron transfer (RET) such as succinate are observed in tissue ischemia, making mitochondrial complex I of the respiratory chain (NADH:ubiquinone oxidoreductase) the most vulnerable enzyme to the following reperfusion. It has been shown that brain complex I is predisposed to losing its flavin mononucleotide (FMN) cofactor when maintained in the reduced state in conditions of RET both in vitro and in vivo. Here we investigated the process of redox-dependent dissociation of FMN from mitochondrial complex I in brain and heart mitochondria. In contrast to the brain enzyme, cardiac complex I does not lose FMN when reduced in RET conditions. We proposed that the different kinetics of FMN loss during RET is due to the presence of brain-specific long 50 kDa isoform of the NDUFV3 subunit of complex I, which is absent in the heart where only the canonical 10 kDa short isoform is found. Our simulation studies suggest that the long NDUFV3 isoform can reach toward the FMN binding pocket and affect the nucleotide affinity to the apoenzyme. For the first time, we demonstrated a potential functional role of tissue-specific isoforms of complex I, providing the distinct molecular mechanism of I/R-induced mitochondrial impairment in cardiac and cerebral tissues. By combining functional studies of intact complex I and molecular structure simulations, we defined the critical difference between the brain and heart enzyme and suggested insights into the redox-dependent inactivation mechanisms of complex I during I/R injury in both tissues.
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spelling pubmed-88613972022-03-02 Redox-dependent loss of flavin by mitochondria complex I is different in brain and heart Yoval-Sánchez, Belem Ansari, Fariha James, Joel Niatsetskaya, Zoya Sosunov, Sergey Filipenko, Peter Tikhonova, Irina G. Ten, Vadim Wittig, Ilka Rafikov, Ruslan Galkin, Alexander Redox Biol Research Paper Pathologies associated with tissue ischemia/reperfusion (I/R) in highly metabolizing organs such as the brain and heart are leading causes of death and disability in humans. Molecular mechanisms underlying mitochondrial dysfunction during acute injury in I/R are tissue-specific, but their details are not completely understood. A metabolic shift and accumulation of substrates of reverse electron transfer (RET) such as succinate are observed in tissue ischemia, making mitochondrial complex I of the respiratory chain (NADH:ubiquinone oxidoreductase) the most vulnerable enzyme to the following reperfusion. It has been shown that brain complex I is predisposed to losing its flavin mononucleotide (FMN) cofactor when maintained in the reduced state in conditions of RET both in vitro and in vivo. Here we investigated the process of redox-dependent dissociation of FMN from mitochondrial complex I in brain and heart mitochondria. In contrast to the brain enzyme, cardiac complex I does not lose FMN when reduced in RET conditions. We proposed that the different kinetics of FMN loss during RET is due to the presence of brain-specific long 50 kDa isoform of the NDUFV3 subunit of complex I, which is absent in the heart where only the canonical 10 kDa short isoform is found. Our simulation studies suggest that the long NDUFV3 isoform can reach toward the FMN binding pocket and affect the nucleotide affinity to the apoenzyme. For the first time, we demonstrated a potential functional role of tissue-specific isoforms of complex I, providing the distinct molecular mechanism of I/R-induced mitochondrial impairment in cardiac and cerebral tissues. By combining functional studies of intact complex I and molecular structure simulations, we defined the critical difference between the brain and heart enzyme and suggested insights into the redox-dependent inactivation mechanisms of complex I during I/R injury in both tissues. Elsevier 2022-02-06 /pmc/articles/PMC8861397/ /pubmed/35189550 http://dx.doi.org/10.1016/j.redox.2022.102258 Text en © 2022 Published by Elsevier B.V. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Yoval-Sánchez, Belem
Ansari, Fariha
James, Joel
Niatsetskaya, Zoya
Sosunov, Sergey
Filipenko, Peter
Tikhonova, Irina G.
Ten, Vadim
Wittig, Ilka
Rafikov, Ruslan
Galkin, Alexander
Redox-dependent loss of flavin by mitochondria complex I is different in brain and heart
title Redox-dependent loss of flavin by mitochondria complex I is different in brain and heart
title_full Redox-dependent loss of flavin by mitochondria complex I is different in brain and heart
title_fullStr Redox-dependent loss of flavin by mitochondria complex I is different in brain and heart
title_full_unstemmed Redox-dependent loss of flavin by mitochondria complex I is different in brain and heart
title_short Redox-dependent loss of flavin by mitochondria complex I is different in brain and heart
title_sort redox-dependent loss of flavin by mitochondria complex i is different in brain and heart
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8861397/
https://www.ncbi.nlm.nih.gov/pubmed/35189550
http://dx.doi.org/10.1016/j.redox.2022.102258
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