Age-related changes in miR-143-3p:Igfbp5 interactions affect muscle regeneration

Ana Soriano-Arroquia1, Rachel McCormick1, Andrew P Molloy2

  • 1Institute of Ageing and Chronic Disease, University of Liverpool, 6 West Derby Street, Liverpool, L7 8TX, UK.

Aging Cell
|January 15, 2016
PubMed

Insights

Aging impairs skeletal muscle regeneration due to disrupted microRNA-143-3p and Igfbp5 interactions. This age-related molecular dysregulation affects satellite cell function and muscle repair.

Area of Science:

  • Molecular biology
  • Aging research
  • Regenerative medicine

Background:

  • Skeletal muscle regeneration declines with age.
  • Molecular mechanisms behind this decline are not fully understood.
  • microRNAs (miRNAs) are key gene regulators in tissue regeneration.

Purpose of the Study:

  • Investigate the role of microRNA-143-3p and its target Igfbp5 in age-related muscle regeneration.
  • Identify molecular pathways contributing to impaired muscle repair in aging.

Main Methods:

  • Utilized mouse and human satellite cells and primary myoblasts.
  • Employed an in vitro muscle regeneration model.
  • Analyzed miRNA expression and target gene interactions.

Main Results:

  • Disrupted microRNA-143-3p and Igfbp5 expression impacts in vitro muscle regeneration.
  • miR-143 regulates Igfbp5 in myoblasts.
  • Expression of miR-143 and Igfbp5 is altered in aged mouse satellite cells.
  • Downregulation of miR-143 with aging may be compensatory, but Igfbp5 upregulation increases senescence, impairing myogenesis.

Conclusions:

  • Dysregulation of the miR-143-3p:Igfbp5 axis in aged satellite cells contributes to impaired muscle regeneration.
  • This molecular interaction is a key factor in age-related decline of satellite cell function.