DNA damage-activated ABL-MyoD signaling contributes to DNA repair in skeletal myoblasts

M Simonatto1, F Marullo, F Chiacchiera

  • 11] Epigenetics and Regenerative Medicine, IRCCS Fondazione Santa Lucia, Rome, Italy [2] Muscle Development and Regeneration, Sanford-Burnham Institute for Medical Research, La Jolla, CA, USA.

Insights

MyoD plays a novel role in DNA repair, not just muscle gene expression. ABL kinase signaling coordinates MyoD

Area of Science:

  • Cellular biology
  • Molecular biology
  • Muscle development

Background:

  • MyoD controls muscle gene expression.
  • DNA damage response involves ABL tyrosine kinase and MyoD.
  • ABL kinase phosphorylates MyoD, inhibiting transcription during genotoxic stress.

Purpose of the Study:

  • Investigate the role of ABL-MyoD signaling in DNA repair.
  • Determine MyoD's function in the DNA damage response beyond transcription control.

Main Methods:

  • Studied MyoD recruitment to DNA repair foci.
  • Utilized ABL knockdown, imatinib inhibition, and MyoD mutants (Y30F).
  • Assessed DNA repair in MyoD-null satellite cells and heterologous systems.

Main Results:

  • DNA damage recruits MyoD to pNbs1 repair foci, dependent on ABL kinase.
  • MyoD binds chromatin at target genes upon DNA damage without activating transcription.
  • MyoD phosphorylation is crucial for DNA repair; MyoD Y30F mutant shows impaired repair.
  • MyoD-null satellite cells exhibit defective DNA repair, rescued by wild-type MyoD but not Y30F mutant.

Conclusions:

  • MyoD is essential for DNA repair in myoblasts.
  • ABL-MyoD signaling coordinates DNA repair and transcription.
  • MyoD's function extends to maintaining genomic integrity during DNA damage.

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