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  3. Cox7a1 controls skeletal muscle physiology and heart regeneration through complex IV dimerization.
 

Cox7a1 controls skeletal muscle physiology and heart regeneration through complex IV dimerization.

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BORIS DOI
10.48350/196524
Date of Publication
July 22, 2024
Publication Type
Article
Division/Institute

Institut für Anatomie...

Universitätsinstitut ...

Institut für Anatomie...

Institut für Anatomie...

Institut für Anatomie...

Microscopy Imaging Ce...

Author
García-Poyatos, Carolina
Arora, Prateek
Institut für Anatomie - Entwicklungsbiologie & Regeneration
Institut für Anatomie
Calvo, Enrique
dos Santos Marques, Ines Joao
Institut für Anatomie - Entwicklungsbiologie & Regeneration
Institut für Anatomie
Kirschke, Nick
Institut für Anatomie - Entwicklungsbiologie & Regeneration
Galardi-Castilla, Maria
Lembke, Carla-Sophie
Institut für Anatomie
Institut für Anatomie - Entwicklungsbiologie & Regeneration
Meer, Marco Daniel
Institut für Anatomie - Entwicklungsbiologie & Regeneration
Fernández-Montes, Paula
Ernst, Alexander Uwe Johannorcid-logo
Institut für Anatomie - Entwicklungsbiologie & Regeneration
Haberthür, Davidorcid-logo
Institut für Anatomie - MicroCT
Institut für Anatomie - Topographische & Klinische Anatomie
Institut für Anatomie
Hlushchuk, Ruslan
Institut für Anatomie - Topographische & Klinische Anatomie
Institut für Anatomie - MicroCT
Vázquez, Jesús
Vermathen, Peterorcid-logo
Universitätsinstitut für Diagnostische und Interventionelle Neuroradiologie (DIN)
Enríquez, José Antonio
Mercader Huber, Nadia Isabelorcid-logo
Institut für Anatomie
Institut für Anatomie - Entwicklungsbiologie & Regeneration
Subject(s)

600 - Technology::610...

500 - Science::570 - ...

Series
Developmental cell
ISSN or ISBN (if monograph)
1878-1551
Publisher
Elsevier
Language
English
Publisher DOI
10.1016/j.devcel.2024.04.012
PubMed ID
38701784
Uncontrolled Keywords

Ca(2+) signaling cox7...

Description
The oxidative phosphorylation (OXPHOS) system is intricately organized, with respiratory complexes forming super-assembled quaternary structures whose assembly mechanisms and physiological roles remain under investigation. Cox7a2l, also known as Scaf1, facilitates complex III and complex IV (CIII-CIV) super-assembly, enhancing energetic efficiency in various species. We examined the role of Cox7a1, another Cox7a family member, in supercomplex assembly and muscle physiology. Zebrafish lacking Cox7a1 exhibited reduced CIV2 formation, metabolic alterations, and non-pathological muscle performance decline. Additionally, cox7a1-/- hearts displayed a pro-regenerative metabolic profile, impacting cardiac regenerative response. The distinct phenotypic effects of cox7a1-/- and cox7a2l-/- underscore the diverse metabolic and physiological consequences of impaired supercomplex formation, emphasizing the significance of Cox7a1 in muscle maturation within the OXPHOS system.
Handle
https://boris-portal.unibe.ch/handle/20.500.12422/177198
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File(s)
FileFile TypeFormatSizeLicensePublisher/Copright statementContent
1-s2.0-S1534580724002375-main.pdftextAdobe PDF6.39 MBpublishedOpen
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