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Metabolic reprogramming during hyperammonemia targets mitochondrial function and postmitotic senescence

Ammonia is a cytotoxic metabolite with pleiotropic molecular and metabolic effects, including senescence induction. During dysregulated ammonia metabolism, which occurs in chronic diseases, skeletal muscle becomes a major organ for nonhepatocyte ammonia uptake. Muscle ammonia disposal occurs in mito...

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Autores principales: Kumar, Avinash, Welch, Nicole, Mishra, Saurabh, Bellar, Annette, Silva, Rafaella Nasciemento, Li, Ling, Singh, Shashi Shekhar, Sharkoff, Mary, Kerr, Alexis, Chelluboyina, Aruna Kumar, Sekar, Jinendiran, Attaway, Amy H., Hoppel, Charles, Willard, Belinda, Davuluri, Gangarao, Dasarathy, Srinivasan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8783680/
https://www.ncbi.nlm.nih.gov/pubmed/34935641
http://dx.doi.org/10.1172/jci.insight.154089
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author Kumar, Avinash
Welch, Nicole
Mishra, Saurabh
Bellar, Annette
Silva, Rafaella Nasciemento
Li, Ling
Singh, Shashi Shekhar
Sharkoff, Mary
Kerr, Alexis
Chelluboyina, Aruna Kumar
Sekar, Jinendiran
Attaway, Amy H.
Hoppel, Charles
Willard, Belinda
Davuluri, Gangarao
Dasarathy, Srinivasan
author_facet Kumar, Avinash
Welch, Nicole
Mishra, Saurabh
Bellar, Annette
Silva, Rafaella Nasciemento
Li, Ling
Singh, Shashi Shekhar
Sharkoff, Mary
Kerr, Alexis
Chelluboyina, Aruna Kumar
Sekar, Jinendiran
Attaway, Amy H.
Hoppel, Charles
Willard, Belinda
Davuluri, Gangarao
Dasarathy, Srinivasan
author_sort Kumar, Avinash
collection PubMed
description Ammonia is a cytotoxic metabolite with pleiotropic molecular and metabolic effects, including senescence induction. During dysregulated ammonia metabolism, which occurs in chronic diseases, skeletal muscle becomes a major organ for nonhepatocyte ammonia uptake. Muscle ammonia disposal occurs in mitochondria via cataplerosis of critical intermediary metabolite α-ketoglutarate, a senescence-ameliorating molecule. Untargeted and mitochondrially targeted data were analyzed by multiomics approaches. These analyses were validated experimentally to dissect the specific mitochondrial oxidative defects and functional consequences, including senescence. Responses to ammonia lowering in myotubes and in hyperammonemic portacaval anastomosis rat muscle were studied. Whole-cell transcriptomics integrated with whole-cell, mitochondrial, and tissue proteomics showed distinct temporal clusters of responses with enrichment of oxidative dysfunction and senescence-related pathways/proteins during hyperammonemia and after ammonia withdrawal. Functional and metabolic studies showed defects in electron transport chain complexes I, III, and IV; loss of supercomplex assembly; decreased ATP synthesis; increased free radical generation with oxidative modification of proteins/lipids; and senescence-associated molecular phenotype–increased β-galactosidase activity and expression of p16(INK), p21, and p53. These perturbations were partially reversed by ammonia lowering. Dysregulated ammonia metabolism caused reversible mitochondrial dysfunction by transcriptional and translational perturbations in multiple pathways with a distinct skeletal muscle senescence-associated molecular phenotype.
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spelling pubmed-87836802022-01-26 Metabolic reprogramming during hyperammonemia targets mitochondrial function and postmitotic senescence Kumar, Avinash Welch, Nicole Mishra, Saurabh Bellar, Annette Silva, Rafaella Nasciemento Li, Ling Singh, Shashi Shekhar Sharkoff, Mary Kerr, Alexis Chelluboyina, Aruna Kumar Sekar, Jinendiran Attaway, Amy H. Hoppel, Charles Willard, Belinda Davuluri, Gangarao Dasarathy, Srinivasan JCI Insight Research Article Ammonia is a cytotoxic metabolite with pleiotropic molecular and metabolic effects, including senescence induction. During dysregulated ammonia metabolism, which occurs in chronic diseases, skeletal muscle becomes a major organ for nonhepatocyte ammonia uptake. Muscle ammonia disposal occurs in mitochondria via cataplerosis of critical intermediary metabolite α-ketoglutarate, a senescence-ameliorating molecule. Untargeted and mitochondrially targeted data were analyzed by multiomics approaches. These analyses were validated experimentally to dissect the specific mitochondrial oxidative defects and functional consequences, including senescence. Responses to ammonia lowering in myotubes and in hyperammonemic portacaval anastomosis rat muscle were studied. Whole-cell transcriptomics integrated with whole-cell, mitochondrial, and tissue proteomics showed distinct temporal clusters of responses with enrichment of oxidative dysfunction and senescence-related pathways/proteins during hyperammonemia and after ammonia withdrawal. Functional and metabolic studies showed defects in electron transport chain complexes I, III, and IV; loss of supercomplex assembly; decreased ATP synthesis; increased free radical generation with oxidative modification of proteins/lipids; and senescence-associated molecular phenotype–increased β-galactosidase activity and expression of p16(INK), p21, and p53. These perturbations were partially reversed by ammonia lowering. Dysregulated ammonia metabolism caused reversible mitochondrial dysfunction by transcriptional and translational perturbations in multiple pathways with a distinct skeletal muscle senescence-associated molecular phenotype. American Society for Clinical Investigation 2021-12-22 /pmc/articles/PMC8783680/ /pubmed/34935641 http://dx.doi.org/10.1172/jci.insight.154089 Text en © 2021 Kumar et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Kumar, Avinash
Welch, Nicole
Mishra, Saurabh
Bellar, Annette
Silva, Rafaella Nasciemento
Li, Ling
Singh, Shashi Shekhar
Sharkoff, Mary
Kerr, Alexis
Chelluboyina, Aruna Kumar
Sekar, Jinendiran
Attaway, Amy H.
Hoppel, Charles
Willard, Belinda
Davuluri, Gangarao
Dasarathy, Srinivasan
Metabolic reprogramming during hyperammonemia targets mitochondrial function and postmitotic senescence
title Metabolic reprogramming during hyperammonemia targets mitochondrial function and postmitotic senescence
title_full Metabolic reprogramming during hyperammonemia targets mitochondrial function and postmitotic senescence
title_fullStr Metabolic reprogramming during hyperammonemia targets mitochondrial function and postmitotic senescence
title_full_unstemmed Metabolic reprogramming during hyperammonemia targets mitochondrial function and postmitotic senescence
title_short Metabolic reprogramming during hyperammonemia targets mitochondrial function and postmitotic senescence
title_sort metabolic reprogramming during hyperammonemia targets mitochondrial function and postmitotic senescence
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8783680/
https://www.ncbi.nlm.nih.gov/pubmed/34935641
http://dx.doi.org/10.1172/jci.insight.154089
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