WNT signaling in skeletal muscle regeneration is modulated by a MEF2A-regulated miRNA mega-cluster

Thesis (Ph.D.)--Boston University === Skeletal muscle regenerates in response to disease or injury through the activation of quiescent muscle stem cells and their subsequent differentiation into multi-nucleated myotubes. Understanding the molecular mechanisms of regeneration is critical to exploit t...

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Main Author: Snyder, Christine Marie
Language:en_US
Published: Boston University 2015
Online Access:https://hdl.handle.net/2144/12634
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spelling ndltd-bu.edu-oai-open.bu.edu-2144-126342019-01-08T15:35:21Z WNT signaling in skeletal muscle regeneration is modulated by a MEF2A-regulated miRNA mega-cluster Snyder, Christine Marie Thesis (Ph.D.)--Boston University Skeletal muscle regenerates in response to disease or injury through the activation of quiescent muscle stem cells and their subsequent differentiation into multi-nucleated myotubes. Understanding the molecular mechanisms of regeneration is critical to exploit this pathway for use in tissue repair. Data shown here demonstrate that MEF2A plays an essential role in skeletal muscle regeneration in adult mice. Regenerating muscle from MEF2A knockout mice displays widespread necrosis, reduced myofiber cross-sectional area, and a significant reduction in Pax7-positive progenitors. The existence of activated progenitor cells that co-express MEF2A and Pax7 is also documented in adult regenerative myogenesis. MEF2A controls this process through its direct regulation of the largest known mammalian rnicroRNA (rniRNA) cluster, the Gtl2-Dio3 locus. All miRNAs (>40) within this cluster are coordinately downregulated in MEF2A-deficient regenerating muscle, and a subset of the Gtl2-Dio3 rniRNAs represses secreted Frizzled- related proteins (sFRPs), inhibitors of Wnt signaling. Consistent with downregulation of this rniRNA cluster, expression of sFRPs is upregulated and Wnt signaling is inhibited in MEF2A-deficient regenerating muscle. Furthermore, overexpression of Gtl2-Dio3 miRNAs, miR-433 and miR-410, restores myotube formation in MEF2A-deficient myoblasts. Thus, miRNA-mediated modulation of Wnt signaling by MEF2A is a requisite step for proper muscle regeneration, and represents an attractive pathway for enhancing regeneration of diseased muscle. 2015-08-05T04:21:45Z 2015-08-05T04:21:45Z 2012 2012 Thesis/Dissertation (ALMA)contemp https://hdl.handle.net/2144/12634 en_US This work is being made available in OpenBU by permission of its author, and is available for research purposes only. All rights are reserved to the author. Boston University
collection NDLTD
language en_US
sources NDLTD
description Thesis (Ph.D.)--Boston University === Skeletal muscle regenerates in response to disease or injury through the activation of quiescent muscle stem cells and their subsequent differentiation into multi-nucleated myotubes. Understanding the molecular mechanisms of regeneration is critical to exploit this pathway for use in tissue repair. Data shown here demonstrate that MEF2A plays an essential role in skeletal muscle regeneration in adult mice. Regenerating muscle from MEF2A knockout mice displays widespread necrosis, reduced myofiber cross-sectional area, and a significant reduction in Pax7-positive progenitors. The existence of activated progenitor cells that co-express MEF2A and Pax7 is also documented in adult regenerative myogenesis. MEF2A controls this process through its direct regulation of the largest known mammalian rnicroRNA (rniRNA) cluster, the Gtl2-Dio3 locus. All miRNAs (>40) within this cluster are coordinately downregulated in MEF2A-deficient regenerating muscle, and a subset of the Gtl2-Dio3 rniRNAs represses secreted Frizzled- related proteins (sFRPs), inhibitors of Wnt signaling. Consistent with downregulation of this rniRNA cluster, expression of sFRPs is upregulated and Wnt signaling is inhibited in MEF2A-deficient regenerating muscle. Furthermore, overexpression of Gtl2-Dio3 miRNAs, miR-433 and miR-410, restores myotube formation in MEF2A-deficient myoblasts. Thus, miRNA-mediated modulation of Wnt signaling by MEF2A is a requisite step for proper muscle regeneration, and represents an attractive pathway for enhancing regeneration of diseased muscle.
author Snyder, Christine Marie
spellingShingle Snyder, Christine Marie
WNT signaling in skeletal muscle regeneration is modulated by a MEF2A-regulated miRNA mega-cluster
author_facet Snyder, Christine Marie
author_sort Snyder, Christine Marie
title WNT signaling in skeletal muscle regeneration is modulated by a MEF2A-regulated miRNA mega-cluster
title_short WNT signaling in skeletal muscle regeneration is modulated by a MEF2A-regulated miRNA mega-cluster
title_full WNT signaling in skeletal muscle regeneration is modulated by a MEF2A-regulated miRNA mega-cluster
title_fullStr WNT signaling in skeletal muscle regeneration is modulated by a MEF2A-regulated miRNA mega-cluster
title_full_unstemmed WNT signaling in skeletal muscle regeneration is modulated by a MEF2A-regulated miRNA mega-cluster
title_sort wnt signaling in skeletal muscle regeneration is modulated by a mef2a-regulated mirna mega-cluster
publisher Boston University
publishDate 2015
url https://hdl.handle.net/2144/12634
work_keys_str_mv AT snyderchristinemarie wntsignalinginskeletalmuscleregenerationismodulatedbyamef2aregulatedmirnamegacluster
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