4.7 Article

TGF- signalling and reactive oxygen species drive fibrosis and matrix remodelling in myxomatous mitral valves

期刊

CARDIOVASCULAR RESEARCH
卷 99, 期 1, 页码 175-184

出版社

OXFORD UNIV PRESS
DOI: 10.1093/cvr/cvt083

关键词

Cardiovascular surgery; Valves; Mitral valve; Regurgitation; Antioxidants

资金

  1. National Institutes of Health [HL092235, HL111121]
  2. Mayo Clinic Center for Regenerative Medicine
  3. Mayo Clinic Kogod Center on Aging

向作者/读者索取更多资源

Myxomatous mitral valve disease (MMVD) is associated with leaflet thickening, fibrosis, matrix remodelling, and leaflet prolapse. Molecular mechanisms contributing to MMVD, however, remain poorly understood. We tested the hypothesis that increased transforming growth factor- (TGF-) signalling and reactive oxygen species (ROS) are major contributors to pro-fibrotic gene expression in human and mouse mitral valves. Using qRTPCR, we found that increased expression of TGF-1 in mitral valves from humans with MMVD (n 24) was associated with increased expression of connective tissue growth factor (CTGF) and matrix metalloproteinase 2 (MMP2). Increased levels of phospho-SMAD2/3 (western blotting) and expression of SMAD-specific E3 ubiquitin-protein ligases (SMURF) 1 and 2 (qRTPCR) suggested that TGF-1 signalling occurred through canonical signalling cascades. Oxidative stress (dihydroethidium staining) was increased in human MMVD tissue and associated with increases in NAD(P)H oxidase catalytic subunits (Nox) 2 and 4, occurring despite increases in superoxide dismutase 1 (SOD1). In mitral valves from SOD1-deficient mice, expression of CTGF, MMP2, Nox2, and Nox4 was significantly increased, suggesting that ROS can independently activate pro-fibrotic and matrix remodelling gene expression patterns. Furthermore, treatment of mouse mitral valve interstitial cells with cell permeable antioxidants attenuated TGF-1-induced pro-fibrotic and matrix remodelling gene expression in vitro. Activation of canonical TGF- signalling is a major contributor to fibrosis and matrix remodelling in MMVD, and is amplified by increases in oxidative stress. Treatments aimed at reducing TGF- activation and oxidative stress in early MMVD may slow progression of MMVD.

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