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Decline of Phosphotransfer and Substrate Supply Metabolic Circuits Hinders ATP Cycling in Aging Myocardium

Integration of mitochondria with cytosolic ATP-consuming/ATP-sensing and substrate supply processes is critical for muscle bioenergetics and electrical activity. Whether age-dependent muscle weakness and increased electrical instability depends on perturbations in cellular energetic circuits is unkn...

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Autores principales: Nemutlu, Emirhan, Gupta, Anu, Zhang, Song, Viqar, Maria, Holmuhamedov, Ekhson, Terzic, Andre, Jahangir, Arshad, Dzeja, Petras
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4574965/
https://www.ncbi.nlm.nih.gov/pubmed/26378442
http://dx.doi.org/10.1371/journal.pone.0136556
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author Nemutlu, Emirhan
Gupta, Anu
Zhang, Song
Viqar, Maria
Holmuhamedov, Ekhson
Terzic, Andre
Jahangir, Arshad
Dzeja, Petras
author_facet Nemutlu, Emirhan
Gupta, Anu
Zhang, Song
Viqar, Maria
Holmuhamedov, Ekhson
Terzic, Andre
Jahangir, Arshad
Dzeja, Petras
author_sort Nemutlu, Emirhan
collection PubMed
description Integration of mitochondria with cytosolic ATP-consuming/ATP-sensing and substrate supply processes is critical for muscle bioenergetics and electrical activity. Whether age-dependent muscle weakness and increased electrical instability depends on perturbations in cellular energetic circuits is unknown. To define energetic remodeling of aged atrial myocardium we tracked dynamics of ATP synthesis-utilization, substrate supply, and phosphotransfer circuits through adenylate kinase (AK), creatine kinase (CK), and glycolytic/glycogenolytic pathways using (18)O stable isotope-based phosphometabolomic technology. Samples of intact atrial myocardium from adult and aged rats were subjected to (18)O-labeling procedure at resting basal state, and analyzed using the (18)O-assisted HPLC-GC/MS technique. Characteristics for aging atria were lower inorganic phosphate Pi[(18)O], γ-ATP[(18)O], β-ADP[(18)O], and creatine phosphate CrP[(18)O] (18)O-labeling rates indicating diminished ATP utilization-synthesis and AK and CK phosphotransfer fluxes. Shift in dynamics of glycolytic phosphotransfer was reflected in the diminished G6P[(18)O] turnover with relatively constant glycogenolytic flux or G1P[(18)O] (18)O-labeling. Labeling of G3P[(18)O], an indicator of G3P-shuttle activity and substrate supply to mitochondria, was depressed in aged myocardium. Aged atrial myocardium displayed reduced incorporation of (18)O into second ((18)O(2)), third ((18)O(3)), and fourth ((18)O(4)) positions of Pi[(18)O] and a lower Pi[(18)O]/γ-ATP[(18) O]-labeling ratio, indicating delayed energetic communication and ATP cycling between mitochondria and cellular ATPases. Adrenergic stress alleviated diminished CK flux, AK catalyzed β-ATP turnover and energetic communication in aging atria. Thus, (18)O-assisted phosphometabolomics uncovered simultaneous phosphotransfer through AK, CK, and glycolytic pathways and G3P substrate shuttle deficits hindering energetic communication and ATP cycling, which may underlie energetic vulnerability of aging atrial myocardium.
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spelling pubmed-45749652015-09-25 Decline of Phosphotransfer and Substrate Supply Metabolic Circuits Hinders ATP Cycling in Aging Myocardium Nemutlu, Emirhan Gupta, Anu Zhang, Song Viqar, Maria Holmuhamedov, Ekhson Terzic, Andre Jahangir, Arshad Dzeja, Petras PLoS One Research Article Integration of mitochondria with cytosolic ATP-consuming/ATP-sensing and substrate supply processes is critical for muscle bioenergetics and electrical activity. Whether age-dependent muscle weakness and increased electrical instability depends on perturbations in cellular energetic circuits is unknown. To define energetic remodeling of aged atrial myocardium we tracked dynamics of ATP synthesis-utilization, substrate supply, and phosphotransfer circuits through adenylate kinase (AK), creatine kinase (CK), and glycolytic/glycogenolytic pathways using (18)O stable isotope-based phosphometabolomic technology. Samples of intact atrial myocardium from adult and aged rats were subjected to (18)O-labeling procedure at resting basal state, and analyzed using the (18)O-assisted HPLC-GC/MS technique. Characteristics for aging atria were lower inorganic phosphate Pi[(18)O], γ-ATP[(18)O], β-ADP[(18)O], and creatine phosphate CrP[(18)O] (18)O-labeling rates indicating diminished ATP utilization-synthesis and AK and CK phosphotransfer fluxes. Shift in dynamics of glycolytic phosphotransfer was reflected in the diminished G6P[(18)O] turnover with relatively constant glycogenolytic flux or G1P[(18)O] (18)O-labeling. Labeling of G3P[(18)O], an indicator of G3P-shuttle activity and substrate supply to mitochondria, was depressed in aged myocardium. Aged atrial myocardium displayed reduced incorporation of (18)O into second ((18)O(2)), third ((18)O(3)), and fourth ((18)O(4)) positions of Pi[(18)O] and a lower Pi[(18)O]/γ-ATP[(18) O]-labeling ratio, indicating delayed energetic communication and ATP cycling between mitochondria and cellular ATPases. Adrenergic stress alleviated diminished CK flux, AK catalyzed β-ATP turnover and energetic communication in aging atria. Thus, (18)O-assisted phosphometabolomics uncovered simultaneous phosphotransfer through AK, CK, and glycolytic pathways and G3P substrate shuttle deficits hindering energetic communication and ATP cycling, which may underlie energetic vulnerability of aging atrial myocardium. Public Library of Science 2015-09-17 /pmc/articles/PMC4574965/ /pubmed/26378442 http://dx.doi.org/10.1371/journal.pone.0136556 Text en © 2015 Nemutlu et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Nemutlu, Emirhan
Gupta, Anu
Zhang, Song
Viqar, Maria
Holmuhamedov, Ekhson
Terzic, Andre
Jahangir, Arshad
Dzeja, Petras
Decline of Phosphotransfer and Substrate Supply Metabolic Circuits Hinders ATP Cycling in Aging Myocardium
title Decline of Phosphotransfer and Substrate Supply Metabolic Circuits Hinders ATP Cycling in Aging Myocardium
title_full Decline of Phosphotransfer and Substrate Supply Metabolic Circuits Hinders ATP Cycling in Aging Myocardium
title_fullStr Decline of Phosphotransfer and Substrate Supply Metabolic Circuits Hinders ATP Cycling in Aging Myocardium
title_full_unstemmed Decline of Phosphotransfer and Substrate Supply Metabolic Circuits Hinders ATP Cycling in Aging Myocardium
title_short Decline of Phosphotransfer and Substrate Supply Metabolic Circuits Hinders ATP Cycling in Aging Myocardium
title_sort decline of phosphotransfer and substrate supply metabolic circuits hinders atp cycling in aging myocardium
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4574965/
https://www.ncbi.nlm.nih.gov/pubmed/26378442
http://dx.doi.org/10.1371/journal.pone.0136556
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