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Molecular Atlas of Postnatal Mouse Heart Development

BACKGROUND: The molecular mechanisms mediating postnatal loss of cardiac regeneration in mammals are not fully understood. We aimed to provide an integrated resource of mRNA, protein, and metabolite changes in the neonatal heart for identification of metabolism‐related mechanisms associated with car...

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Autores principales: Talman, Virpi, Teppo, Jaakko, Pöhö, Päivi, Movahedi, Parisa, Vaikkinen, Anu, Karhu, S. Tuuli, Trošt, Kajetan, Suvitaival, Tommi, Heikkonen, Jukka, Pahikkala, Tapio, Kotiaho, Tapio, Kostiainen, Risto, Varjosalo, Markku, Ruskoaho, Heikki
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6474944/
https://www.ncbi.nlm.nih.gov/pubmed/30371266
http://dx.doi.org/10.1161/JAHA.118.010378
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author Talman, Virpi
Teppo, Jaakko
Pöhö, Päivi
Movahedi, Parisa
Vaikkinen, Anu
Karhu, S. Tuuli
Trošt, Kajetan
Suvitaival, Tommi
Heikkonen, Jukka
Pahikkala, Tapio
Kotiaho, Tapio
Kostiainen, Risto
Varjosalo, Markku
Ruskoaho, Heikki
author_facet Talman, Virpi
Teppo, Jaakko
Pöhö, Päivi
Movahedi, Parisa
Vaikkinen, Anu
Karhu, S. Tuuli
Trošt, Kajetan
Suvitaival, Tommi
Heikkonen, Jukka
Pahikkala, Tapio
Kotiaho, Tapio
Kostiainen, Risto
Varjosalo, Markku
Ruskoaho, Heikki
author_sort Talman, Virpi
collection PubMed
description BACKGROUND: The molecular mechanisms mediating postnatal loss of cardiac regeneration in mammals are not fully understood. We aimed to provide an integrated resource of mRNA, protein, and metabolite changes in the neonatal heart for identification of metabolism‐related mechanisms associated with cardiac regeneration. METHODS AND RESULTS: Mouse ventricular tissue samples taken on postnatal day 1 (P01), P04, P09, and P23 were analyzed with RNA sequencing and global proteomics and metabolomics. Gene ontology analysis, KEGG pathway analysis, and fuzzy c‐means clustering were used to identify up‐ or downregulated biological processes and metabolic pathways on all 3 levels, and Ingenuity pathway analysis (Qiagen) was used to identify upstream regulators. Differential expression was observed for 8547 mRNAs and for 1199 of 2285 quantified proteins. Furthermore, 151 metabolites with significant changes were identified. Differentially regulated metabolic pathways include branched chain amino acid degradation (upregulated at P23), fatty acid metabolism (upregulated at P04 and P09; downregulated at P23) as well as the HMGCS (HMG‐CoA [hydroxymethylglutaryl‐coenzyme A] synthase)–mediated mevalonate pathway and ketogenesis (transiently activated). Pharmacological inhibition of HMGCS in primary neonatal cardiomyocytes reduced the percentage of BrdU‐positive cardiomyocytes, providing evidence that the mevalonate and ketogenesis routes may participate in regulating the cardiomyocyte cell cycle. CONCLUSIONS: This study is the first systems‐level resource combining data from genomewide transcriptomics with global quantitative proteomics and untargeted metabolomics analyses in the mouse heart throughout the early postnatal period. These integrated data of molecular changes associated with the loss of cardiac regeneration may open up new possibilities for the development of regenerative therapies.
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spelling pubmed-64749442019-04-24 Molecular Atlas of Postnatal Mouse Heart Development Talman, Virpi Teppo, Jaakko Pöhö, Päivi Movahedi, Parisa Vaikkinen, Anu Karhu, S. Tuuli Trošt, Kajetan Suvitaival, Tommi Heikkonen, Jukka Pahikkala, Tapio Kotiaho, Tapio Kostiainen, Risto Varjosalo, Markku Ruskoaho, Heikki J Am Heart Assoc Original Research BACKGROUND: The molecular mechanisms mediating postnatal loss of cardiac regeneration in mammals are not fully understood. We aimed to provide an integrated resource of mRNA, protein, and metabolite changes in the neonatal heart for identification of metabolism‐related mechanisms associated with cardiac regeneration. METHODS AND RESULTS: Mouse ventricular tissue samples taken on postnatal day 1 (P01), P04, P09, and P23 were analyzed with RNA sequencing and global proteomics and metabolomics. Gene ontology analysis, KEGG pathway analysis, and fuzzy c‐means clustering were used to identify up‐ or downregulated biological processes and metabolic pathways on all 3 levels, and Ingenuity pathway analysis (Qiagen) was used to identify upstream regulators. Differential expression was observed for 8547 mRNAs and for 1199 of 2285 quantified proteins. Furthermore, 151 metabolites with significant changes were identified. Differentially regulated metabolic pathways include branched chain amino acid degradation (upregulated at P23), fatty acid metabolism (upregulated at P04 and P09; downregulated at P23) as well as the HMGCS (HMG‐CoA [hydroxymethylglutaryl‐coenzyme A] synthase)–mediated mevalonate pathway and ketogenesis (transiently activated). Pharmacological inhibition of HMGCS in primary neonatal cardiomyocytes reduced the percentage of BrdU‐positive cardiomyocytes, providing evidence that the mevalonate and ketogenesis routes may participate in regulating the cardiomyocyte cell cycle. CONCLUSIONS: This study is the first systems‐level resource combining data from genomewide transcriptomics with global quantitative proteomics and untargeted metabolomics analyses in the mouse heart throughout the early postnatal period. These integrated data of molecular changes associated with the loss of cardiac regeneration may open up new possibilities for the development of regenerative therapies. John Wiley and Sons Inc. 2018-10-14 /pmc/articles/PMC6474944/ /pubmed/30371266 http://dx.doi.org/10.1161/JAHA.118.010378 Text en © 2018 The Authors. Published on behalf of the American Heart Association, Inc., by Wiley. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Research
Talman, Virpi
Teppo, Jaakko
Pöhö, Päivi
Movahedi, Parisa
Vaikkinen, Anu
Karhu, S. Tuuli
Trošt, Kajetan
Suvitaival, Tommi
Heikkonen, Jukka
Pahikkala, Tapio
Kotiaho, Tapio
Kostiainen, Risto
Varjosalo, Markku
Ruskoaho, Heikki
Molecular Atlas of Postnatal Mouse Heart Development
title Molecular Atlas of Postnatal Mouse Heart Development
title_full Molecular Atlas of Postnatal Mouse Heart Development
title_fullStr Molecular Atlas of Postnatal Mouse Heart Development
title_full_unstemmed Molecular Atlas of Postnatal Mouse Heart Development
title_short Molecular Atlas of Postnatal Mouse Heart Development
title_sort molecular atlas of postnatal mouse heart development
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6474944/
https://www.ncbi.nlm.nih.gov/pubmed/30371266
http://dx.doi.org/10.1161/JAHA.118.010378
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