Cargando…
Uncoupling protein 2‐mediated metabolic adaptations define cardiac cell function in the heart during transition from young to old age
Cellular replacement in the heart is restricted to postnatal stages with the adult heart largely postmitotic. Studies show that loss of regenerative properties in cardiac cells seems to coincide with alterations in metabolism during postnatal development and maturation. Nevertheless, whether changes...
Autores principales: | , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
John Wiley & Sons, Inc.
2020
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7780806/ https://www.ncbi.nlm.nih.gov/pubmed/32964621 http://dx.doi.org/10.1002/sctm.20-0123 |
_version_ | 1783631574140452864 |
---|---|
author | Kurian, Justin Yuko, Antonia E. Kasatkin, Nicole Rigaud, Vagner O. C. Busch, Kelsey Harlamova, Daria Wagner, Marcus Recchia, Fabio A. Wang, Hong Mohsin, Sadia Houser, Steven R. Khan, Mohsin |
author_facet | Kurian, Justin Yuko, Antonia E. Kasatkin, Nicole Rigaud, Vagner O. C. Busch, Kelsey Harlamova, Daria Wagner, Marcus Recchia, Fabio A. Wang, Hong Mohsin, Sadia Houser, Steven R. Khan, Mohsin |
author_sort | Kurian, Justin |
collection | PubMed |
description | Cellular replacement in the heart is restricted to postnatal stages with the adult heart largely postmitotic. Studies show that loss of regenerative properties in cardiac cells seems to coincide with alterations in metabolism during postnatal development and maturation. Nevertheless, whether changes in cellular metabolism are linked to functional alternations in cardiac cells is not well studied. We report here a novel role for uncoupling protein 2 (UCP2) in regulation of functional properties in cardiac tissue derived stem‐like cells (CTSCs). CTSC were isolated from C57BL/6 mice aged 2 days (nCTSC), 2 month (CTSC), and 2 years old (aCTSC), subjected to bulk‐RNA sequencing that identifies unique transcriptome significantly different between CTSC populations from young and old heart. Moreover, results show that UCP2 is highly expressed in CTSCs from the neonatal heart and is linked to maintenance of glycolysis, proliferation, and survival. With age, UCP2 is reduced shifting energy metabolism to oxidative phosphorylation inversely affecting cellular proliferation and survival in aged CTSCs. Loss of UCP2 in neonatal CTSCs reduces extracellular acidification rate and glycolysis together with reduced cellular proliferation and survival. Mechanistically, UCP2 silencing is linked to significant alteration of mitochondrial genes together with cell cycle and survival signaling pathways as identified by RNA‐sequencing and STRING bioinformatic analysis. Hence, our study shows UCP2‐mediated metabolic profile regulates functional properties of cardiac cells during transition from neonatal to aging cardiac states. |
format | Online Article Text |
id | pubmed-7780806 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | John Wiley & Sons, Inc. |
record_format | MEDLINE/PubMed |
spelling | pubmed-77808062021-01-08 Uncoupling protein 2‐mediated metabolic adaptations define cardiac cell function in the heart during transition from young to old age Kurian, Justin Yuko, Antonia E. Kasatkin, Nicole Rigaud, Vagner O. C. Busch, Kelsey Harlamova, Daria Wagner, Marcus Recchia, Fabio A. Wang, Hong Mohsin, Sadia Houser, Steven R. Khan, Mohsin Stem Cells Transl Med Tissue‐specific Progenitor and Stem Cells Cellular replacement in the heart is restricted to postnatal stages with the adult heart largely postmitotic. Studies show that loss of regenerative properties in cardiac cells seems to coincide with alterations in metabolism during postnatal development and maturation. Nevertheless, whether changes in cellular metabolism are linked to functional alternations in cardiac cells is not well studied. We report here a novel role for uncoupling protein 2 (UCP2) in regulation of functional properties in cardiac tissue derived stem‐like cells (CTSCs). CTSC were isolated from C57BL/6 mice aged 2 days (nCTSC), 2 month (CTSC), and 2 years old (aCTSC), subjected to bulk‐RNA sequencing that identifies unique transcriptome significantly different between CTSC populations from young and old heart. Moreover, results show that UCP2 is highly expressed in CTSCs from the neonatal heart and is linked to maintenance of glycolysis, proliferation, and survival. With age, UCP2 is reduced shifting energy metabolism to oxidative phosphorylation inversely affecting cellular proliferation and survival in aged CTSCs. Loss of UCP2 in neonatal CTSCs reduces extracellular acidification rate and glycolysis together with reduced cellular proliferation and survival. Mechanistically, UCP2 silencing is linked to significant alteration of mitochondrial genes together with cell cycle and survival signaling pathways as identified by RNA‐sequencing and STRING bioinformatic analysis. Hence, our study shows UCP2‐mediated metabolic profile regulates functional properties of cardiac cells during transition from neonatal to aging cardiac states. John Wiley & Sons, Inc. 2020-09-10 /pmc/articles/PMC7780806/ /pubmed/32964621 http://dx.doi.org/10.1002/sctm.20-0123 Text en © 2020 The Authors. stem cells translational medicine published by Wiley Periodicals LLC on behalf of AlphaMed Press. This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made. |
spellingShingle | Tissue‐specific Progenitor and Stem Cells Kurian, Justin Yuko, Antonia E. Kasatkin, Nicole Rigaud, Vagner O. C. Busch, Kelsey Harlamova, Daria Wagner, Marcus Recchia, Fabio A. Wang, Hong Mohsin, Sadia Houser, Steven R. Khan, Mohsin Uncoupling protein 2‐mediated metabolic adaptations define cardiac cell function in the heart during transition from young to old age |
title | Uncoupling protein 2‐mediated metabolic adaptations define cardiac cell function in the heart during transition from young to old age |
title_full | Uncoupling protein 2‐mediated metabolic adaptations define cardiac cell function in the heart during transition from young to old age |
title_fullStr | Uncoupling protein 2‐mediated metabolic adaptations define cardiac cell function in the heart during transition from young to old age |
title_full_unstemmed | Uncoupling protein 2‐mediated metabolic adaptations define cardiac cell function in the heart during transition from young to old age |
title_short | Uncoupling protein 2‐mediated metabolic adaptations define cardiac cell function in the heart during transition from young to old age |
title_sort | uncoupling protein 2‐mediated metabolic adaptations define cardiac cell function in the heart during transition from young to old age |
topic | Tissue‐specific Progenitor and Stem Cells |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7780806/ https://www.ncbi.nlm.nih.gov/pubmed/32964621 http://dx.doi.org/10.1002/sctm.20-0123 |
work_keys_str_mv | AT kurianjustin uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT yukoantoniae uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT kasatkinnicole uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT rigaudvagneroc uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT buschkelsey uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT harlamovadaria uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT wagnermarcus uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT recchiafabioa uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT wanghong uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT mohsinsadia uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT houserstevenr uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage AT khanmohsin uncouplingprotein2mediatedmetabolicadaptationsdefinecardiaccellfunctionintheheartduringtransitionfromyoungtooldage |