Atorvastatin inhibits hypercholesterolemia-induced calcification in the aortic valves via the Lrp5 receptor pathway

Nalini M Rajamannan1, Malayannan Subramaniam, Frank Caira

  • 1Division of Cardiology, Northwestern University Feinberg School of Medicine, Chicago, IL 60611, USA. n-rajamannan@northwestern.edu

Circulation
|September 15, 2005
PubMed
Abstract

Insights

Atorvastatin reduces aortic valve calcification in hypercholesterolemia by inhibiting the Lrp5/beta-catenin pathway. This pathway is crucial for cellular proliferation and bone formation in valvular heart disease.

Area of Science:

  • Cardiovascular Biology
  • Molecular Medicine
  • Biomineralization

Background:

  • Calcific aortic valve disease is a leading cause of valve replacement.
  • Cellular mechanisms driving valve calcification remain unclear.
  • Low-density receptor-related protein 5 (Lrp5) is vital for cellular proliferation and osteoblastogenesis via beta-catenin signaling.

Purpose of the Study:

  • To investigate the role of Lrp5 in aortic valve (AV) calcification during experimental hypercholesterolemia.
  • To determine the effect of atorvastatin on AV calcification and associated molecular pathways.

Main Methods:

  • Watanabe rabbits were fed normal, cholesterol-enriched, or cholesterol-enriched with atorvastatin diets.
  • Aortic valves were analyzed for cellular proliferation, Lrp5/beta-catenin signaling, and bone matrix markers.
  • In vitro studies examined atorvastatin's effect on AV myofibroblast proliferation and Lrp5/beta-catenin pathway.

Main Results:

  • Cholesterol diet induced AV calcification with increased Lrp5, osteopontin, and p42/44 expression.
  • Atorvastatin treatment significantly reduced AV bone formation, cellular proliferation, and Lrp5/beta-catenin levels.
  • In vitro findings confirmed Lrp5/beta-catenin involvement in myofibroblast proliferation.

Conclusions:

  • Hypercholesterolemic AV calcification is attenuated by atorvastatin.
  • The Lrp5/beta-catenin pathway is a key mediator in this process.
  • Targeting this pathway may offer therapeutic strategies for valvular heart disease.

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