Cargando…
Mechanical loading of bioengineered skeletal muscle in vitro recapitulates gene expression signatures of resistance exercise in vivo
Understanding the role of mechanical loading and exercise in skeletal muscle (SkM) is paramount for delineating the molecular mechanisms that govern changes in muscle mass. However, it is unknown whether loading of bioengineered SkM in vitro adequately recapitulates the molecular responses observed...
Autores principales: | , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
John Wiley and Sons Inc.
2021
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8653897/ https://www.ncbi.nlm.nih.gov/pubmed/33586196 http://dx.doi.org/10.1002/jcp.30328 |
_version_ | 1784611761531387904 |
---|---|
author | Turner, Daniel C. Gorski, Piotr P. Seaborne, Robert A. Viggars, Mark Murphy, Mark Jarvis, Jonathan C. Martin, Neil R.W. Stewart, Claire E. Sharples, Adam P. |
author_facet | Turner, Daniel C. Gorski, Piotr P. Seaborne, Robert A. Viggars, Mark Murphy, Mark Jarvis, Jonathan C. Martin, Neil R.W. Stewart, Claire E. Sharples, Adam P. |
author_sort | Turner, Daniel C. |
collection | PubMed |
description | Understanding the role of mechanical loading and exercise in skeletal muscle (SkM) is paramount for delineating the molecular mechanisms that govern changes in muscle mass. However, it is unknown whether loading of bioengineered SkM in vitro adequately recapitulates the molecular responses observed after resistance exercise (RE) in vivo. To address this, the transcriptional and epigenetic (DNA methylation) responses were compared after mechanical loading in bioengineered SkM in vitro and after RE in vivo. Specifically, genes known to be upregulated/hypomethylated after RE in humans were analyzed. Ninety‐three percent of these genes demonstrated similar changes in gene expression post‐loading in the bioengineered muscle when compared to acute RE in humans. Furthermore, similar differences in gene expression were observed between loaded bioengineered SkM and after programmed RT in rat SkM tissue. Hypomethylation occurred for only one of the genes analysed (GRIK2) post‐loading in bioengineered SkM. To further validate these findings, DNA methylation and mRNA expression of known hypomethylated and upregulated genes post‐acute RE in humans were also analyzed at 0.5, 3, and 24 h post‐loading in bioengineered muscle. The largest changes in gene expression occurred at 3 h, whereby 82% and 91% of genes responded similarly when compared to human and rodent SkM respectively. DNA methylation of only a small proportion of genes analyzed (TRAF1, MSN, and CTTN) significantly increased post‐loading in bioengineered SkM alone. Overall, mechanical loading of bioengineered SkM in vitro recapitulates the gene expression profile of human and rodent SkM after RE in vivo. Although some genes demonstrated differential DNA methylation post‐loading in bioengineered SkM, such changes across the majority of genes analyzed did not closely mimic the epigenetic response to acute‐RE in humans. |
format | Online Article Text |
id | pubmed-8653897 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | John Wiley and Sons Inc. |
record_format | MEDLINE/PubMed |
spelling | pubmed-86538972021-12-20 Mechanical loading of bioengineered skeletal muscle in vitro recapitulates gene expression signatures of resistance exercise in vivo Turner, Daniel C. Gorski, Piotr P. Seaborne, Robert A. Viggars, Mark Murphy, Mark Jarvis, Jonathan C. Martin, Neil R.W. Stewart, Claire E. Sharples, Adam P. J Cell Physiol Research Articles Understanding the role of mechanical loading and exercise in skeletal muscle (SkM) is paramount for delineating the molecular mechanisms that govern changes in muscle mass. However, it is unknown whether loading of bioengineered SkM in vitro adequately recapitulates the molecular responses observed after resistance exercise (RE) in vivo. To address this, the transcriptional and epigenetic (DNA methylation) responses were compared after mechanical loading in bioengineered SkM in vitro and after RE in vivo. Specifically, genes known to be upregulated/hypomethylated after RE in humans were analyzed. Ninety‐three percent of these genes demonstrated similar changes in gene expression post‐loading in the bioengineered muscle when compared to acute RE in humans. Furthermore, similar differences in gene expression were observed between loaded bioengineered SkM and after programmed RT in rat SkM tissue. Hypomethylation occurred for only one of the genes analysed (GRIK2) post‐loading in bioengineered SkM. To further validate these findings, DNA methylation and mRNA expression of known hypomethylated and upregulated genes post‐acute RE in humans were also analyzed at 0.5, 3, and 24 h post‐loading in bioengineered muscle. The largest changes in gene expression occurred at 3 h, whereby 82% and 91% of genes responded similarly when compared to human and rodent SkM respectively. DNA methylation of only a small proportion of genes analyzed (TRAF1, MSN, and CTTN) significantly increased post‐loading in bioengineered SkM alone. Overall, mechanical loading of bioengineered SkM in vitro recapitulates the gene expression profile of human and rodent SkM after RE in vivo. Although some genes demonstrated differential DNA methylation post‐loading in bioengineered SkM, such changes across the majority of genes analyzed did not closely mimic the epigenetic response to acute‐RE in humans. John Wiley and Sons Inc. 2021-02-15 2021-09 /pmc/articles/PMC8653897/ /pubmed/33586196 http://dx.doi.org/10.1002/jcp.30328 Text en © 2021 The Authors. Journal of Cellular Physiology published by Wiley Periodicals LLC https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited. |
spellingShingle | Research Articles Turner, Daniel C. Gorski, Piotr P. Seaborne, Robert A. Viggars, Mark Murphy, Mark Jarvis, Jonathan C. Martin, Neil R.W. Stewart, Claire E. Sharples, Adam P. Mechanical loading of bioengineered skeletal muscle in vitro recapitulates gene expression signatures of resistance exercise in vivo |
title | Mechanical loading of bioengineered skeletal muscle in vitro recapitulates gene expression signatures of resistance exercise in vivo |
title_full | Mechanical loading of bioengineered skeletal muscle in vitro recapitulates gene expression signatures of resistance exercise in vivo |
title_fullStr | Mechanical loading of bioengineered skeletal muscle in vitro recapitulates gene expression signatures of resistance exercise in vivo |
title_full_unstemmed | Mechanical loading of bioengineered skeletal muscle in vitro recapitulates gene expression signatures of resistance exercise in vivo |
title_short | Mechanical loading of bioengineered skeletal muscle in vitro recapitulates gene expression signatures of resistance exercise in vivo |
title_sort | mechanical loading of bioengineered skeletal muscle in vitro recapitulates gene expression signatures of resistance exercise in vivo |
topic | Research Articles |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8653897/ https://www.ncbi.nlm.nih.gov/pubmed/33586196 http://dx.doi.org/10.1002/jcp.30328 |
work_keys_str_mv | AT turnerdanielc mechanicalloadingofbioengineeredskeletalmuscleinvitrorecapitulatesgeneexpressionsignaturesofresistanceexerciseinvivo AT gorskipiotrp mechanicalloadingofbioengineeredskeletalmuscleinvitrorecapitulatesgeneexpressionsignaturesofresistanceexerciseinvivo AT seaborneroberta mechanicalloadingofbioengineeredskeletalmuscleinvitrorecapitulatesgeneexpressionsignaturesofresistanceexerciseinvivo AT viggarsmark mechanicalloadingofbioengineeredskeletalmuscleinvitrorecapitulatesgeneexpressionsignaturesofresistanceexerciseinvivo AT murphymark mechanicalloadingofbioengineeredskeletalmuscleinvitrorecapitulatesgeneexpressionsignaturesofresistanceexerciseinvivo AT jarvisjonathanc mechanicalloadingofbioengineeredskeletalmuscleinvitrorecapitulatesgeneexpressionsignaturesofresistanceexerciseinvivo AT martinneilrw mechanicalloadingofbioengineeredskeletalmuscleinvitrorecapitulatesgeneexpressionsignaturesofresistanceexerciseinvivo AT stewartclairee mechanicalloadingofbioengineeredskeletalmuscleinvitrorecapitulatesgeneexpressionsignaturesofresistanceexerciseinvivo AT sharplesadamp mechanicalloadingofbioengineeredskeletalmuscleinvitrorecapitulatesgeneexpressionsignaturesofresistanceexerciseinvivo |