Expression of androgen receptor target genes in skeletal muscle

Kesha Rana1, Nicole K L Lee, Jeffrey D Zajac

  • 1Department of Medicine, Austin Health, University of Melbourne, Heidelberg, Victoria, Australia.

Insights

Androgens, via the androgen receptor (AR), promote muscle mass by keeping muscle stem cells proliferative and preventing differentiation. They also suppress muscle-wasting pathways, preserving adult muscle.

Area of Science:

  • Endocrinology
  • Muscle Physiology
  • Molecular Biology

Background:

  • Androgens play a crucial role in skeletal muscle development and maintenance.
  • The precise molecular mechanisms underlying androgen's anabolic effects on muscle are not fully understood.

Purpose of the Study:

  • To elucidate the mechanisms of androgen's anabolic actions in skeletal muscle.
  • To identify androgen receptor (AR)-regulated genes involved in muscle growth and preservation.

Main Methods:

  • Investigated AR-regulated gene expression in vitro (human skeletal muscle cells) and in vivo (mouse models: orchidectomized, AR knockout).
  • Analyzed expression of key myogenic regulatory factors (myogenin, c-Myc) and genes controlling myoblast differentiation (Tceal7, p57(Kip2), Igf2, calcineurin Aa).
  • Assessed the impact of testosterone and dihydrotestosterone treatments and AR DNA-binding activity on gene expression.

Main Results:

  • Myogenin and c-Myc expression were repressed by the androgen/AR pathway.
  • Genes promoting myoblast differentiation (Tceal7, Igf2, calcineurin Aa) were upregulated in AR-deficient muscle and downregulated by testosterone treatment.
  • Ubiquitin ligase Fbxo32 expression was repressed by dihydrotestosterone.

Conclusions:

  • In males, androgens act via AR to promote peak muscle mass by maintaining myoblasts in a proliferative state, delaying differentiation.
  • Androgens also preserve adult muscle mass by suppressing ubiquitin ligase-mediated atrophy pathways.

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