Cargando…

Age‐induced mitochondrial DNA point mutations are inadequate to alter metabolic homeostasis in response to nutrient challenge

Mitochondrial dysfunction is frequently associated with impairment in metabolic homeostasis and insulin action, and is thought to underlie cellular aging. However, it is unclear whether mitochondrial dysfunction is a cause or consequence of insulin resistance in humans. To determine the impact of in...

Descripción completa

Detalles Bibliográficos
Autores principales: Moore, Timothy M., Zhou, Zhenqi, Strumwasser, Alexander R., Cohn, Whitaker, Lin, Amanda J., Cory, Kevin, Whitney, Kate, Ho, Theodore, Ho, Timothy, Lee, Joseph L., Rucker, Daniel H., Hoang, Austin N., Widjaja, Kevin, Abrishami, Aaron D., Charugundla, Sarada, Stiles, Linsey, Whitelegge, Julian P., Turcotte, Lorraine P., Wanagat, Jonathan, Hevener, Andrea L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7681042/
https://www.ncbi.nlm.nih.gov/pubmed/33049094
http://dx.doi.org/10.1111/acel.13166
_version_ 1783612553529655296
author Moore, Timothy M.
Zhou, Zhenqi
Strumwasser, Alexander R.
Cohn, Whitaker
Lin, Amanda J.
Cory, Kevin
Whitney, Kate
Ho, Theodore
Ho, Timothy
Lee, Joseph L.
Rucker, Daniel H.
Hoang, Austin N.
Widjaja, Kevin
Abrishami, Aaron D.
Charugundla, Sarada
Stiles, Linsey
Whitelegge, Julian P.
Turcotte, Lorraine P.
Wanagat, Jonathan
Hevener, Andrea L.
author_facet Moore, Timothy M.
Zhou, Zhenqi
Strumwasser, Alexander R.
Cohn, Whitaker
Lin, Amanda J.
Cory, Kevin
Whitney, Kate
Ho, Theodore
Ho, Timothy
Lee, Joseph L.
Rucker, Daniel H.
Hoang, Austin N.
Widjaja, Kevin
Abrishami, Aaron D.
Charugundla, Sarada
Stiles, Linsey
Whitelegge, Julian P.
Turcotte, Lorraine P.
Wanagat, Jonathan
Hevener, Andrea L.
author_sort Moore, Timothy M.
collection PubMed
description Mitochondrial dysfunction is frequently associated with impairment in metabolic homeostasis and insulin action, and is thought to underlie cellular aging. However, it is unclear whether mitochondrial dysfunction is a cause or consequence of insulin resistance in humans. To determine the impact of intrinsic mitochondrial dysfunction on metabolism and insulin action, we performed comprehensive metabolic phenotyping of the polymerase gamma (PolG) D257A “mutator” mouse, a model known to accumulate supraphysiological mitochondrial DNA (mtDNA) point mutations. We utilized the heterozygous PolG mutator mouse (PolG(+/mut)) because it accumulates mtDNA point mutations ~ 500‐fold > wild‐type mice (WT), but fails to develop an overt progeria phenotype, unlike PolG(mut/mut) animals. To determine whether mtDNA point mutations induce metabolic dysfunction, we examined male PolG(+/mut) mice at 6 and 12 months of age during normal chow feeding, after 24‐hr starvation, and following high‐fat diet (HFD) feeding. No marked differences were observed in glucose homeostasis, adiposity, protein/gene markers of metabolism, or oxygen consumption in muscle between WT and PolG(+/mut) mice during any of the conditions or ages studied. However, proteomic analyses performed on isolated mitochondria from 12‐month‐old PolG(+/mut) mouse muscle revealed alterations in the expression of mitochondrial ribosomal proteins, electron transport chain components, and oxidative stress‐related factors compared with WT. These findings suggest that mtDNA point mutations at levels observed in mammalian aging are insufficient to disrupt metabolic homeostasis and insulin action in male mice.
format Online
Article
Text
id pubmed-7681042
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-76810422020-11-27 Age‐induced mitochondrial DNA point mutations are inadequate to alter metabolic homeostasis in response to nutrient challenge Moore, Timothy M. Zhou, Zhenqi Strumwasser, Alexander R. Cohn, Whitaker Lin, Amanda J. Cory, Kevin Whitney, Kate Ho, Theodore Ho, Timothy Lee, Joseph L. Rucker, Daniel H. Hoang, Austin N. Widjaja, Kevin Abrishami, Aaron D. Charugundla, Sarada Stiles, Linsey Whitelegge, Julian P. Turcotte, Lorraine P. Wanagat, Jonathan Hevener, Andrea L. Aging Cell Original Articles Mitochondrial dysfunction is frequently associated with impairment in metabolic homeostasis and insulin action, and is thought to underlie cellular aging. However, it is unclear whether mitochondrial dysfunction is a cause or consequence of insulin resistance in humans. To determine the impact of intrinsic mitochondrial dysfunction on metabolism and insulin action, we performed comprehensive metabolic phenotyping of the polymerase gamma (PolG) D257A “mutator” mouse, a model known to accumulate supraphysiological mitochondrial DNA (mtDNA) point mutations. We utilized the heterozygous PolG mutator mouse (PolG(+/mut)) because it accumulates mtDNA point mutations ~ 500‐fold > wild‐type mice (WT), but fails to develop an overt progeria phenotype, unlike PolG(mut/mut) animals. To determine whether mtDNA point mutations induce metabolic dysfunction, we examined male PolG(+/mut) mice at 6 and 12 months of age during normal chow feeding, after 24‐hr starvation, and following high‐fat diet (HFD) feeding. No marked differences were observed in glucose homeostasis, adiposity, protein/gene markers of metabolism, or oxygen consumption in muscle between WT and PolG(+/mut) mice during any of the conditions or ages studied. However, proteomic analyses performed on isolated mitochondria from 12‐month‐old PolG(+/mut) mouse muscle revealed alterations in the expression of mitochondrial ribosomal proteins, electron transport chain components, and oxidative stress‐related factors compared with WT. These findings suggest that mtDNA point mutations at levels observed in mammalian aging are insufficient to disrupt metabolic homeostasis and insulin action in male mice. John Wiley and Sons Inc. 2020-10-13 2020-11 /pmc/articles/PMC7681042/ /pubmed/33049094 http://dx.doi.org/10.1111/acel.13166 Text en © 2020 The Authors. Aging Cell published by the Anatomical Society and John Wiley & Sons Ltd. 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 Articles
Moore, Timothy M.
Zhou, Zhenqi
Strumwasser, Alexander R.
Cohn, Whitaker
Lin, Amanda J.
Cory, Kevin
Whitney, Kate
Ho, Theodore
Ho, Timothy
Lee, Joseph L.
Rucker, Daniel H.
Hoang, Austin N.
Widjaja, Kevin
Abrishami, Aaron D.
Charugundla, Sarada
Stiles, Linsey
Whitelegge, Julian P.
Turcotte, Lorraine P.
Wanagat, Jonathan
Hevener, Andrea L.
Age‐induced mitochondrial DNA point mutations are inadequate to alter metabolic homeostasis in response to nutrient challenge
title Age‐induced mitochondrial DNA point mutations are inadequate to alter metabolic homeostasis in response to nutrient challenge
title_full Age‐induced mitochondrial DNA point mutations are inadequate to alter metabolic homeostasis in response to nutrient challenge
title_fullStr Age‐induced mitochondrial DNA point mutations are inadequate to alter metabolic homeostasis in response to nutrient challenge
title_full_unstemmed Age‐induced mitochondrial DNA point mutations are inadequate to alter metabolic homeostasis in response to nutrient challenge
title_short Age‐induced mitochondrial DNA point mutations are inadequate to alter metabolic homeostasis in response to nutrient challenge
title_sort age‐induced mitochondrial dna point mutations are inadequate to alter metabolic homeostasis in response to nutrient challenge
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7681042/
https://www.ncbi.nlm.nih.gov/pubmed/33049094
http://dx.doi.org/10.1111/acel.13166
work_keys_str_mv AT mooretimothym ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT zhouzhenqi ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT strumwasseralexanderr ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT cohnwhitaker ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT linamandaj ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT corykevin ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT whitneykate ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT hotheodore ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT hotimothy ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT leejosephl ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT ruckerdanielh ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT hoangaustinn ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT widjajakevin ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT abrishamiaarond ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT charugundlasarada ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT stileslinsey ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT whiteleggejulianp ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT turcottelorrainep ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT wanagatjonathan ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge
AT hevenerandreal ageinducedmitochondrialdnapointmutationsareinadequatetoaltermetabolichomeostasisinresponsetonutrientchallenge