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Ameliorating the hallmarks of cellular senescence in skeletal muscle myogenic progenitors in vitro and in vivo

  • Aref Shahini
  • , Nika Rajabian
  • , Debanik Choudhury
  • , Shahryar Shahini
  • , Kalyan Vydiam
  • , Thy Nguyen
  • , Joseph Kulczyk
  • , Tyler Santarelli
  • , Izuagie Ikhapoh
  • , Yali Zhang
  • , Jianmin Wang
  • , Song Liu
  • , Aimee Stablewski
  • , Ramkumar Thiyagarajan
  • , Kenneth Seldeen
  • , Bruce R. Troen
  • , Jennifer Peirick
  • , Pedro Lei
  • , Stelios T. Andreadis
  • SUNY Buffalo
  • Harvard University
  • Roswell Park Cancer Institute
  • Roswell Park Comprehensive Cancer Center
  • Department of Veterans Affairs

Research output: Contribution to journalArticlepeer-review

34 Scopus citations

Abstract

Senescence of myogenic progenitors impedes skeletal muscle regeneration. Here, we show that overexpression of the transcription factor NANOG in senescent myoblasts can overcome the effects of cellular senescence and confer a youthful phenotype to senescent cells. NANOG ameliorated primary hallmarks of cellular senescence including genomic instability, loss of proteostasis, and mitochondrial dysfunction. The rejuvenating effects of NANOG included restoration of DNA damage response via up-regulation of DNA repair proteins, recovery of heterochromatin marks via up-regulation of histones, and reactivation of autophagy and mitochondrial energetics via up-regulation of AMP-activated protein kinase (AMPK). Expression of NANOG in the skeletal muscle of a mouse model of premature aging restored the number of myogenic progenitors and induced formation of eMyHC+ myofibers. This work demonstrates the feasibility of reversing the effects of cellular senescence in vitro and in vivo, with no need for reprogramming to the pluripotent state.

Original languageEnglish
Article numbereabe5671
JournalScience Advances
Volume7
Issue number36
DOIs
StatePublished - Sep 2021

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