Cargando…

Enhanced exercise and regenerative capacity in a mouse model that violates size constraints of oxidative muscle fibres

A central tenet of skeletal muscle biology is the existence of an inverse relationship between the oxidative fibre capacity and its size. However, robustness of this relationship is unknown. We show that superimposition of Estrogen-related receptor gamma (Errγ) on the myostatin (Mtn) mouse null back...

Descripción completa

Detalles Bibliográficos
Autores principales: Omairi, Saleh, Matsakas, Antonios, Degens, Hans, Kretz, Oliver, Hansson, Kenth-Arne, Solbrå, Andreas Våvang, Bruusgaard, Jo C, Joch, Barbara, Sartori, Roberta, Giallourou, Natasa, Mitchell, Robert, Collins-Hooper, Henry, Foster, Keith, Pasternack, Arja, Ritvos, Olli, Sandri, Marco, Narkar, Vihang, Swann, Jonathan R, Huber, Tobias B, Patel, Ketan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4975572/
https://www.ncbi.nlm.nih.gov/pubmed/27494364
http://dx.doi.org/10.7554/eLife.16940
_version_ 1782446747553890304
author Omairi, Saleh
Matsakas, Antonios
Degens, Hans
Kretz, Oliver
Hansson, Kenth-Arne
Solbrå, Andreas Våvang
Bruusgaard, Jo C
Joch, Barbara
Sartori, Roberta
Giallourou, Natasa
Mitchell, Robert
Collins-Hooper, Henry
Foster, Keith
Pasternack, Arja
Ritvos, Olli
Sandri, Marco
Narkar, Vihang
Swann, Jonathan R
Huber, Tobias B
Patel, Ketan
author_facet Omairi, Saleh
Matsakas, Antonios
Degens, Hans
Kretz, Oliver
Hansson, Kenth-Arne
Solbrå, Andreas Våvang
Bruusgaard, Jo C
Joch, Barbara
Sartori, Roberta
Giallourou, Natasa
Mitchell, Robert
Collins-Hooper, Henry
Foster, Keith
Pasternack, Arja
Ritvos, Olli
Sandri, Marco
Narkar, Vihang
Swann, Jonathan R
Huber, Tobias B
Patel, Ketan
author_sort Omairi, Saleh
collection PubMed
description A central tenet of skeletal muscle biology is the existence of an inverse relationship between the oxidative fibre capacity and its size. However, robustness of this relationship is unknown. We show that superimposition of Estrogen-related receptor gamma (Errγ) on the myostatin (Mtn) mouse null background (Mtn(-/-)/Errγ(Tg/+)) results in hypertrophic muscle with a high oxidative capacity thus violating the inverse relationship between fibre size and oxidative capacity. We also examined the canonical view that oxidative muscle phenotype positively correlate with Satellite cell number, the resident stem cells of skeletal muscle. Surprisingly, hypertrophic fibres from Mtn(-/-)/Errγ(Tg/+) mouse showed satellite cell deficit which unexpectedly did not affect muscle regeneration. These observations 1) challenge the concept of a constraint between fibre size and oxidative capacity and 2) indicate the important role of the microcirculation in the regenerative capacity of a muscle even when satellite cell numbers are reduced. DOI: http://dx.doi.org/10.7554/eLife.16940.001
format Online
Article
Text
id pubmed-4975572
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher eLife Sciences Publications, Ltd
record_format MEDLINE/PubMed
spelling pubmed-49755722016-08-10 Enhanced exercise and regenerative capacity in a mouse model that violates size constraints of oxidative muscle fibres Omairi, Saleh Matsakas, Antonios Degens, Hans Kretz, Oliver Hansson, Kenth-Arne Solbrå, Andreas Våvang Bruusgaard, Jo C Joch, Barbara Sartori, Roberta Giallourou, Natasa Mitchell, Robert Collins-Hooper, Henry Foster, Keith Pasternack, Arja Ritvos, Olli Sandri, Marco Narkar, Vihang Swann, Jonathan R Huber, Tobias B Patel, Ketan eLife Developmental Biology and Stem Cells A central tenet of skeletal muscle biology is the existence of an inverse relationship between the oxidative fibre capacity and its size. However, robustness of this relationship is unknown. We show that superimposition of Estrogen-related receptor gamma (Errγ) on the myostatin (Mtn) mouse null background (Mtn(-/-)/Errγ(Tg/+)) results in hypertrophic muscle with a high oxidative capacity thus violating the inverse relationship between fibre size and oxidative capacity. We also examined the canonical view that oxidative muscle phenotype positively correlate with Satellite cell number, the resident stem cells of skeletal muscle. Surprisingly, hypertrophic fibres from Mtn(-/-)/Errγ(Tg/+) mouse showed satellite cell deficit which unexpectedly did not affect muscle regeneration. These observations 1) challenge the concept of a constraint between fibre size and oxidative capacity and 2) indicate the important role of the microcirculation in the regenerative capacity of a muscle even when satellite cell numbers are reduced. DOI: http://dx.doi.org/10.7554/eLife.16940.001 eLife Sciences Publications, Ltd 2016-08-05 /pmc/articles/PMC4975572/ /pubmed/27494364 http://dx.doi.org/10.7554/eLife.16940 Text en © 2016, Omairi et al http://creativecommons.org/licenses/by/4.0/ This article is distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Developmental Biology and Stem Cells
Omairi, Saleh
Matsakas, Antonios
Degens, Hans
Kretz, Oliver
Hansson, Kenth-Arne
Solbrå, Andreas Våvang
Bruusgaard, Jo C
Joch, Barbara
Sartori, Roberta
Giallourou, Natasa
Mitchell, Robert
Collins-Hooper, Henry
Foster, Keith
Pasternack, Arja
Ritvos, Olli
Sandri, Marco
Narkar, Vihang
Swann, Jonathan R
Huber, Tobias B
Patel, Ketan
Enhanced exercise and regenerative capacity in a mouse model that violates size constraints of oxidative muscle fibres
title Enhanced exercise and regenerative capacity in a mouse model that violates size constraints of oxidative muscle fibres
title_full Enhanced exercise and regenerative capacity in a mouse model that violates size constraints of oxidative muscle fibres
title_fullStr Enhanced exercise and regenerative capacity in a mouse model that violates size constraints of oxidative muscle fibres
title_full_unstemmed Enhanced exercise and regenerative capacity in a mouse model that violates size constraints of oxidative muscle fibres
title_short Enhanced exercise and regenerative capacity in a mouse model that violates size constraints of oxidative muscle fibres
title_sort enhanced exercise and regenerative capacity in a mouse model that violates size constraints of oxidative muscle fibres
topic Developmental Biology and Stem Cells
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4975572/
https://www.ncbi.nlm.nih.gov/pubmed/27494364
http://dx.doi.org/10.7554/eLife.16940
work_keys_str_mv AT omairisaleh enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT matsakasantonios enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT degenshans enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT kretzoliver enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT hanssonkentharne enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT solbraandreasvavang enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT bruusgaardjoc enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT jochbarbara enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT sartoriroberta enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT giallourounatasa enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT mitchellrobert enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT collinshooperhenry enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT fosterkeith enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT pasternackarja enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT ritvosolli enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT sandrimarco enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT narkarvihang enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT swannjonathanr enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT hubertobiasb enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres
AT patelketan enhancedexerciseandregenerativecapacityinamousemodelthatviolatessizeconstraintsofoxidativemusclefibres