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Electron leak from NDUFA13 within mitochondrial complex I attenuates ischemia-reperfusion injury via dimerized STAT3

The causative relationship between specific mitochondrial molecular structure and reactive oxygen species (ROS) generation has attracted much attention. NDUFA13 is a newly identified accessory subunit of mitochondria complex I with a unique molecular structure and a location that is very close to th...

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Autores principales: Hu, Hengxun, Nan, Jinliang, Sun, Yong, Zhu, Dan, Xiao, Changchen, Wang, Yaping, Zhu, Lianlian, Wu, Yue, Zhao, Jing, Wu, Rongrong, Chen, Jinghai, Yu, Hong, Hu, Xinyang, Zhu, Wei, Wang, Jian’an
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5692532/
https://www.ncbi.nlm.nih.gov/pubmed/29078279
http://dx.doi.org/10.1073/pnas.1704723114
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author Hu, Hengxun
Nan, Jinliang
Sun, Yong
Zhu, Dan
Xiao, Changchen
Wang, Yaping
Zhu, Lianlian
Wu, Yue
Zhao, Jing
Wu, Rongrong
Chen, Jinghai
Yu, Hong
Hu, Xinyang
Zhu, Wei
Wang, Jian’an
author_facet Hu, Hengxun
Nan, Jinliang
Sun, Yong
Zhu, Dan
Xiao, Changchen
Wang, Yaping
Zhu, Lianlian
Wu, Yue
Zhao, Jing
Wu, Rongrong
Chen, Jinghai
Yu, Hong
Hu, Xinyang
Zhu, Wei
Wang, Jian’an
author_sort Hu, Hengxun
collection PubMed
description The causative relationship between specific mitochondrial molecular structure and reactive oxygen species (ROS) generation has attracted much attention. NDUFA13 is a newly identified accessory subunit of mitochondria complex I with a unique molecular structure and a location that is very close to the subunits of complex I of low electrochemical potentials. It has been reported that down-regulated NDUFA13 rendered tumor cells more resistant to apoptosis. Thus, this molecule might provide an ideal opportunity for us to investigate the profile of ROS generation and its role in cell protection against apoptosis. In the present study, we generated cardiac-specific tamoxifen-inducible NDUFA13 knockout mice and demonstrated that cardiac-specific heterozygous knockout (cHet) mice exhibited normal cardiac morphology and function in the basal state but were more resistant to apoptosis when exposed to ischemia-reperfusion (I/R) injury. cHet mice showed a preserved capacity of oxygen consumption rate by complex I and II, which can match the oxygen consumption driven by electron donors of N,N,N′,N′-tetramethyl-p-phenylenediamine (TMPD)+ascorbate. Interestingly, at basal state, cHet mice exhibited a higher H(2)O(2) level in the cytosol, but not in the mitochondria. Importantly, increased H(2)O(2) served as a second messenger and led to the STAT3 dimerization and, hence, activation of antiapoptotic signaling, which eventually significantly suppressed the superoxide burst and decreased the infarct size during the I/R process in cHet mice.
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spelling pubmed-56925322017-11-20 Electron leak from NDUFA13 within mitochondrial complex I attenuates ischemia-reperfusion injury via dimerized STAT3 Hu, Hengxun Nan, Jinliang Sun, Yong Zhu, Dan Xiao, Changchen Wang, Yaping Zhu, Lianlian Wu, Yue Zhao, Jing Wu, Rongrong Chen, Jinghai Yu, Hong Hu, Xinyang Zhu, Wei Wang, Jian’an Proc Natl Acad Sci U S A Biological Sciences The causative relationship between specific mitochondrial molecular structure and reactive oxygen species (ROS) generation has attracted much attention. NDUFA13 is a newly identified accessory subunit of mitochondria complex I with a unique molecular structure and a location that is very close to the subunits of complex I of low electrochemical potentials. It has been reported that down-regulated NDUFA13 rendered tumor cells more resistant to apoptosis. Thus, this molecule might provide an ideal opportunity for us to investigate the profile of ROS generation and its role in cell protection against apoptosis. In the present study, we generated cardiac-specific tamoxifen-inducible NDUFA13 knockout mice and demonstrated that cardiac-specific heterozygous knockout (cHet) mice exhibited normal cardiac morphology and function in the basal state but were more resistant to apoptosis when exposed to ischemia-reperfusion (I/R) injury. cHet mice showed a preserved capacity of oxygen consumption rate by complex I and II, which can match the oxygen consumption driven by electron donors of N,N,N′,N′-tetramethyl-p-phenylenediamine (TMPD)+ascorbate. Interestingly, at basal state, cHet mice exhibited a higher H(2)O(2) level in the cytosol, but not in the mitochondria. Importantly, increased H(2)O(2) served as a second messenger and led to the STAT3 dimerization and, hence, activation of antiapoptotic signaling, which eventually significantly suppressed the superoxide burst and decreased the infarct size during the I/R process in cHet mice. National Academy of Sciences 2017-11-07 2017-10-20 /pmc/articles/PMC5692532/ /pubmed/29078279 http://dx.doi.org/10.1073/pnas.1704723114 Text en Freely available online through the PNAS open access option.
spellingShingle Biological Sciences
Hu, Hengxun
Nan, Jinliang
Sun, Yong
Zhu, Dan
Xiao, Changchen
Wang, Yaping
Zhu, Lianlian
Wu, Yue
Zhao, Jing
Wu, Rongrong
Chen, Jinghai
Yu, Hong
Hu, Xinyang
Zhu, Wei
Wang, Jian’an
Electron leak from NDUFA13 within mitochondrial complex I attenuates ischemia-reperfusion injury via dimerized STAT3
title Electron leak from NDUFA13 within mitochondrial complex I attenuates ischemia-reperfusion injury via dimerized STAT3
title_full Electron leak from NDUFA13 within mitochondrial complex I attenuates ischemia-reperfusion injury via dimerized STAT3
title_fullStr Electron leak from NDUFA13 within mitochondrial complex I attenuates ischemia-reperfusion injury via dimerized STAT3
title_full_unstemmed Electron leak from NDUFA13 within mitochondrial complex I attenuates ischemia-reperfusion injury via dimerized STAT3
title_short Electron leak from NDUFA13 within mitochondrial complex I attenuates ischemia-reperfusion injury via dimerized STAT3
title_sort electron leak from ndufa13 within mitochondrial complex i attenuates ischemia-reperfusion injury via dimerized stat3
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5692532/
https://www.ncbi.nlm.nih.gov/pubmed/29078279
http://dx.doi.org/10.1073/pnas.1704723114
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