Molecular activation of PPARgamma by angiotensin II type 1-receptor antagonists

David V Erbe1, Katherine Gartrell, Yan-Ling Zhang

  • 1Wyeth Research, Cambridge, MA 02140, USA. derbe@wyeth.com

Vascular Pharmacology
|June 13, 2006
PubMed
Abstract

Insights

Angiotensin II type 1-receptor (ATR(1)) antagonists show weak PPARgamma modulation in cells and do not improve insulin sensitivity in vivo. These findings suggest alternative mechanisms for any observed effects and guide the development of dual-acting agents for hypertension and insulin resistance.

Area of Science:

  • Endocrinology
  • Pharmacology
  • Metabolic Diseases

Background:

  • Elevated blood pressure and insulin resistance are closely linked in patients.
  • Angiotensin II type 1-receptor (ATR(1)) antagonists are used to treat hypertension.
  • Nuclear receptors like PPARgamma play a role in metabolic regulation.

Purpose of the Study:

  • To investigate if ATR(1) antagonists can improve insulin sensitivity.
  • To explore the mechanism involving PPARgamma modulation.
  • To compare the effects with rosiglitazone, a known insulin sensitizer.

Main Methods:

  • In vitro assays measured PPARgamma ligand binding, PGC-1 recruitment, and trans-activation.
  • Adipogenesis was assessed in fibroblast and pre-adipocyte cell lines.
  • Insulin sensitivity was evaluated in ob/ob mice by measuring glucose, insulin, and adiponectin levels.

Main Results:

  • Several ATR(1) antagonists acted as PPARgamma ligands in cell-free assays.
  • Only telmisartan and candesartan showed significant PPARgamma agonism in cellular assays.
  • In vivo, sartans did not improve insulin sensitivity, unlike rosiglitazone.

Conclusions:

  • While some sartans bind PPARgamma, their cellular modulation is weak.
  • ATR(1) antagonists do not appear to improve insulin sensitivity in this rodent model.
  • Reported effects of sartans on insulin sensitivity may involve other pathways, necessitating new therapeutic strategies.

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