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Metabolic homeostasis is maintained in myocardial hibernation by adaptive changes in the transcriptome and proteome

A transgenic mouse model for conditional induction of long-term hibernation via myocardium-specific expression of a VEGF-sequestering soluble receptor allowed the dissection of the hibernation process into an initiation and a maintenance phase. The hypoxic initiation phase was characterized by peak...

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Autores principales: Mayr, Manuel, May, Dalit, Gordon, Oren, Madhu, Basetti, Gilon, Dan, Yin, Xiaoke, Xing, Qiuru, Drozdov, Ignat, Ainali, Chrysanthi, Tsoka, Sophia, Xu, Qingbo, Griffiths, John, Horrevoets, Anton, Keshet, Eli
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Academic Press 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3107937/
https://www.ncbi.nlm.nih.gov/pubmed/21354174
http://dx.doi.org/10.1016/j.yjmcc.2011.02.010
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author Mayr, Manuel
May, Dalit
Gordon, Oren
Madhu, Basetti
Gilon, Dan
Yin, Xiaoke
Xing, Qiuru
Drozdov, Ignat
Ainali, Chrysanthi
Tsoka, Sophia
Xu, Qingbo
Griffiths, John
Horrevoets, Anton
Keshet, Eli
author_facet Mayr, Manuel
May, Dalit
Gordon, Oren
Madhu, Basetti
Gilon, Dan
Yin, Xiaoke
Xing, Qiuru
Drozdov, Ignat
Ainali, Chrysanthi
Tsoka, Sophia
Xu, Qingbo
Griffiths, John
Horrevoets, Anton
Keshet, Eli
author_sort Mayr, Manuel
collection PubMed
description A transgenic mouse model for conditional induction of long-term hibernation via myocardium-specific expression of a VEGF-sequestering soluble receptor allowed the dissection of the hibernation process into an initiation and a maintenance phase. The hypoxic initiation phase was characterized by peak levels of K(ATP) channel and glucose transporter 1 (GLUT1) expression. Glibenclamide, an inhibitor of K(ATP) channels, blocked GLUT1 induction. In the maintenance phase, tissue hypoxia and GLUT1 expression were reduced. Thus, we employed a combined “-omics” approach to resolve this cardioprotective adaptation process. Unguided bioinformatics analysis on the transcriptomic, proteomic and metabolomic datasets confirmed that anaerobic glycolysis was affected and that the observed enzymatic changes in cardiac metabolism were directly linked to hypoxia-inducible factor (HIF)-1 activation. Although metabolite concentrations were kept relatively constant, the combination of the proteomic and transcriptomic dataset improved the statistical confidence of the pathway analysis by 2 orders of magnitude. Importantly, proteomics revealed a reduced phosphorylation state of myosin light chain 2 and cardiac troponin I within the contractile apparatus of hibernating hearts in the absence of changes in protein abundance. Our study demonstrates how combining different “-omics” datasets aids in the identification of key biological pathways: chronic hypoxia resulted in a pronounced adaptive response at the transcript and the protein level to keep metabolite levels steady. This preservation of metabolic homeostasis is likely to contribute to the long-term survival of the hibernating myocardium.
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spelling pubmed-31079372011-07-20 Metabolic homeostasis is maintained in myocardial hibernation by adaptive changes in the transcriptome and proteome Mayr, Manuel May, Dalit Gordon, Oren Madhu, Basetti Gilon, Dan Yin, Xiaoke Xing, Qiuru Drozdov, Ignat Ainali, Chrysanthi Tsoka, Sophia Xu, Qingbo Griffiths, John Horrevoets, Anton Keshet, Eli J Mol Cell Cardiol Original Article A transgenic mouse model for conditional induction of long-term hibernation via myocardium-specific expression of a VEGF-sequestering soluble receptor allowed the dissection of the hibernation process into an initiation and a maintenance phase. The hypoxic initiation phase was characterized by peak levels of K(ATP) channel and glucose transporter 1 (GLUT1) expression. Glibenclamide, an inhibitor of K(ATP) channels, blocked GLUT1 induction. In the maintenance phase, tissue hypoxia and GLUT1 expression were reduced. Thus, we employed a combined “-omics” approach to resolve this cardioprotective adaptation process. Unguided bioinformatics analysis on the transcriptomic, proteomic and metabolomic datasets confirmed that anaerobic glycolysis was affected and that the observed enzymatic changes in cardiac metabolism were directly linked to hypoxia-inducible factor (HIF)-1 activation. Although metabolite concentrations were kept relatively constant, the combination of the proteomic and transcriptomic dataset improved the statistical confidence of the pathway analysis by 2 orders of magnitude. Importantly, proteomics revealed a reduced phosphorylation state of myosin light chain 2 and cardiac troponin I within the contractile apparatus of hibernating hearts in the absence of changes in protein abundance. Our study demonstrates how combining different “-omics” datasets aids in the identification of key biological pathways: chronic hypoxia resulted in a pronounced adaptive response at the transcript and the protein level to keep metabolite levels steady. This preservation of metabolic homeostasis is likely to contribute to the long-term survival of the hibernating myocardium. Academic Press 2011-06 /pmc/articles/PMC3107937/ /pubmed/21354174 http://dx.doi.org/10.1016/j.yjmcc.2011.02.010 Text en © 2011 Elsevier Ltd. https://creativecommons.org/licenses/by-nc-nd/3.0/ Open Access under CC BY-NC-ND 3.0 (https://creativecommons.org/licenses/by-nc-nd/3.0/) license
spellingShingle Original Article
Mayr, Manuel
May, Dalit
Gordon, Oren
Madhu, Basetti
Gilon, Dan
Yin, Xiaoke
Xing, Qiuru
Drozdov, Ignat
Ainali, Chrysanthi
Tsoka, Sophia
Xu, Qingbo
Griffiths, John
Horrevoets, Anton
Keshet, Eli
Metabolic homeostasis is maintained in myocardial hibernation by adaptive changes in the transcriptome and proteome
title Metabolic homeostasis is maintained in myocardial hibernation by adaptive changes in the transcriptome and proteome
title_full Metabolic homeostasis is maintained in myocardial hibernation by adaptive changes in the transcriptome and proteome
title_fullStr Metabolic homeostasis is maintained in myocardial hibernation by adaptive changes in the transcriptome and proteome
title_full_unstemmed Metabolic homeostasis is maintained in myocardial hibernation by adaptive changes in the transcriptome and proteome
title_short Metabolic homeostasis is maintained in myocardial hibernation by adaptive changes in the transcriptome and proteome
title_sort metabolic homeostasis is maintained in myocardial hibernation by adaptive changes in the transcriptome and proteome
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3107937/
https://www.ncbi.nlm.nih.gov/pubmed/21354174
http://dx.doi.org/10.1016/j.yjmcc.2011.02.010
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