Neuronal androgen receptor regulates insulin sensitivity via suppression of hypothalamic NF-κB-mediated PTP1B

I-Chen Yu1, Hung-Yun Lin, Ning-Chun Liu

  • 1George Whipple Laboratory for Cancer Research, Department of Pathology, and the Wilmot Cancer Center, University of Rochester Medical Center, Rochester, New York, USA.

Diabetes
|November 10, 2012
PubMed

Insights

Androgen receptor (AR) in the brain is crucial for maintaining insulin sensitivity in male mice. Its deficiency causes insulin resistance and obesity, suggesting therapeutic targets for metabolic syndrome in men undergoing prostate cancer treatment.

Area of Science:

  • Endocrinology
  • Neuroscience
  • Metabolic Syndrome Research

Background:

  • Metabolic syndrome incidence increases in prostate cancer patients undergoing androgen deprivation therapy (ADT).
  • Androgen receptor (AR) deficiency in mice causes male insulin resistance.
  • Mechanisms of AR's organ-specific regulation of insulin sensitivity are unclear.

Purpose of the Study:

  • To investigate the role of central nervous system (CNS) AR in whole-body insulin sensitivity.
  • To explore AR's contribution to metabolic abnormalities in AR-deficient male mice.
  • To delineate molecular mechanisms of AR-modulated insulin signaling in the brain.

Main Methods:

  • Developed a mouse model with selective AR deficiency in the CNS.
  • Utilized AR-expressing GT1-7 neuronal cells for mechanistic studies.
  • Analyzed insulin signaling pathways, including NF-κB and PTP1B.

Main Results:

  • Neuronal AR deficiency reduced insulin sensitivity in middle-aged mice.
  • Neuronal AR represses hypothalamic PTP1B induction via NF-κB.
  • Hypothalamic insulin resistance promoted hepatic insulin resistance, lipid accumulation, and obesity.
  • Hypothalamic AR deficiency exacerbated diet-induced metabolic dysfunction.

Conclusions:

  • Brain AR plays a key role in regulating whole-body insulin sensitivity.
  • Reduced brain AR function may contribute to insulin resistance and obesity in men on ADT.
  • Targeting neuronal AR and NF-κB offers potential therapeutic strategies for metabolic syndrome.

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