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Troglitazone inhibits mitogenic signaling by insulin in vascular smooth muscle cells

S Goetze1, S Kim, X P Xi

  • 1Division of Endocrinology, Diabetes and Hypertension, University of California, Los Angeles, School of Medicine, 90095, USA.

Insights

Troglitazone inhibits insulin-stimulated vascular smooth muscle cell growth by affecting transcription factors downstream of ERK1/2. This PPARgamma-mediated effect offers a novel therapeutic target for vascular cell proliferation.

Area of Science:

  • Pharmacology
  • Molecular Biology
  • Cardiovascular Research

Background:

  • Troglitazone (TRO) is an oral insulin-sensitizer with known vascular effects.
  • Insulin signaling in vascular smooth muscle cells (VSMCs) involves ERK1/2 MAP kinases and promotes cell growth.
  • Understanding TRO's mechanism in VSMCs is crucial for its therapeutic application.

Purpose of the Study:

  • To investigate the effects of Troglitazone (TRO) on insulin-induced mitogenic signaling in VSMCs.
  • To determine the specific pathway and molecular targets affected by TRO.
  • To explore the role of peroxisome proliferator-activated receptor gamma (PPARγ) in TRO's vascular actions.

Main Methods:

  • Assessed insulin-stimulated DNA synthesis in VSMCs treated with TRO.
  • Measured ERK1/2 MAP kinase activity and Elk-1 transcription factor activity.
  • Evaluated early insulin signaling steps, including PI3K pathway components.
  • Tested other PPARγ ligands (rosiglitazone, 15d-PGJ2) for similar effects.

Main Results:

  • TRO significantly inhibited insulin-induced DNA synthesis in VSMCs.
  • TRO did not affect early insulin signaling or PI3K/Akt pathway.
  • TRO potently inhibited ERK1/2-dependent Elk-1 transcription factor activity, but not ERK1/2 activity itself at lower doses.
  • Other PPARγ ligands also inhibited insulin-induced DNA synthesis.

Conclusions:

  • Troglitazone inhibits insulin-mediated VSMC mitogenesis at a point distal to ERK1/2 activation.
  • The mechanism likely involves PPARγ-dependent inhibition of transcription factors regulating cell growth.
  • These findings highlight a potential PPARγ-mediated pathway for controlling vascular cell proliferation.

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