TGF-β–dependent pathogenesis of mitral valve prolapse in a mouse model of Marfan syndrome

马凡氏综合征 发病机制 纤维蛋白 二尖瓣脱垂 单倍率不足 背景(考古学) 转化生长因子β 二尖瓣 生物 转化生长因子 表型 医学 免疫学 内科学 内分泌学 基因 遗传学 古生物学
作者
Connie M. Ng,Alan Cheng,Loretha Myers,Francisco Martínez-Murillo,Chunfa Jie,Djahida Bedja,Kathleen Gabrielson,Jennifer M.W. Hausladen,Robert P. Mecham,Daniel P. Judge,Harry C. Dietz
出处
期刊:Journal of Clinical Investigation [American Society for Clinical Investigation]
卷期号:114 (11): 1586-1592 被引量:188
标识
DOI:10.1172/jci22715
摘要

Mitral valve prolapse (MVP) is a common human phenotype, yet little is known about the pathogenesis of this condition. MVP can occur in the context of genetic syndromes, including Marfan syndrome (MFS), an autosomal-dominant connective tissue disorder caused by mutations in fibrillin-1. Fibrillin-1 contributes to the regulated activation of the cytokine TGF-beta, and enhanced signaling is a consequence of fibrillin-1 deficiency. We thus hypothesized that increased TGF-beta signaling may contribute to the multisystem pathogenesis of MFS, including the development of myxomatous changes of the atrioventricular valves. Mitral valves from fibrillin-1-deficient mice exhibited postnatally acquired alterations in architecture that correlated both temporally and spatially with increased cell proliferation, decreased apoptosis, and excess TGF-beta activation and signaling. In addition, TGF-beta antagonism in vivo rescued the valve phenotype, suggesting a cause and effect relationship. Expression analyses identified increased expression of numerous TGF-beta-related genes that regulate cell proliferation and survival and plausibly contribute to myxomatous valve disease. These studies validate a novel, genetically engineered murine model of myxomatous changes of the mitral valve and provide critical insight into the pathogenetic mechanism of such changes in MFS and perhaps more common nonsyndromic variants of mitral valve disease.
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