Overexpression of Glucocorticoid Receptor β Enhances Myogenesis and Reduces Catabolic Gene Expression

Terry D Hinds1, Bailey Peck2, Evan Shek3

  • 1Center for Hypertension and Personalized Medicine, Department of Physiology and Pharmacology, University of Toledo College of Medicine, Toledo, OH 43614, USA. terry.hinds@utoledo.edu.

Insights

Glucocorticoid receptor beta (GRβ) overexpression enhances muscle cell growth and protects against glucocorticoid-induced muscle loss by promoting resistance to dexamethasone signaling.

Area of Science:

  • Muscle physiology
  • Endocrinology
  • Molecular biology

Background:

  • Glucocorticoid receptor alpha (GRα) mediates glucocorticoid-induced skeletal muscle atrophy.
  • Glucocorticoid receptor beta (GRβ) lacks ligand-binding capacity and confers glucocorticoid resistance.
  • Targeting GRβ may offer a strategy to mitigate muscle loss driven by GRα activity.

Purpose of the Study:

  • To investigate the effects of GRβ overexpression on myotube formation and cellular response to dexamethasone (Dex).

Main Methods:

  • Measured GR isoform expression in C₂C12 muscle cells under Dex and insulin stimulation.
  • Utilized lentiviral vectors for GRβ overexpression in C₂C12 cells.
  • Assessed cell fusion, myotube formation, and Dex sensitivity via ubiquitin ligase expression.

Main Results:

  • GRβ overexpression upregulated muscle regulatory factors and enhanced myoblast proliferation.
  • GRβ-overexpressing myotubes exhibited increased fusion indices.
  • Myotubes with GRβ overexpression showed reduced Foxo3a mRNA and blunted MAFbx/Atrogen-1 responses to Dex.

Conclusions:

  • GRβ serves as a potential pharmacological target for promoting skeletal muscle growth.
  • Increasing GRβ levels may confer glucocorticoid resistance, protecting muscle mass during high-dose glucocorticoid exposure.

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