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纤连蛋白-A 在心脏瓣膜发育过程中作为 Erk/Smad 活性的平衡物。

Filamin-A as a Balance between Erk/Smad Activities During Cardiac Valve Development.

机构信息

Cardiovascular Developmental Biology Center, Department of Regenerative Medicine and Cell Biology, College of Medicine, Children's Research Institute, Medical University of South Carolina, Charleston, South Carolina.

Vascular Biology Program and Department of Surgery, Boston Children's Hospital and Harvard Medical School, Boston, Massachusetts.

出版信息

Anat Rec (Hoboken). 2019 Jan;302(1):117-124. doi: 10.1002/ar.23911. Epub 2018 Oct 5.

Abstract

Mitral valve prolapse (MVP) affects 2.4% of the population and has poorly understood etiology. Recent genetic studies have begun to unravel the complexities of MVP and through these efforts, mutations in the FLNA (Filamin-A) gene were identified as disease causing. Our in vivo and in vitro studies have validated these genetic findings and have revealed FLNA as a central regulator of valve morphogenesis. The mechanisms by which FLNA mutations result in myxomatous mitral valve disease are currently unknown, but may involve proteins previously associated with mutated regions of the FLNA protein, such as the small GTPase signaling protein, R-Ras. Herein, we report that Filamin-A is required for R-Ras expression and activation of the Ras-Mek-Erk pathway. Loss of the Ras/Erk pathway correlated with hyperactivation of pSmad2/3, increased extracellular matrix (ECM) production and enlarged mitral valves. Analyses of integrin receptors in the mitral valve revealed that Filamin-A was required for β1-integrin expression and provided a potential mechanism for impaired ECM compaction and valve enlargement. Our data support Filamin-A as a protein that regulates the balance between Erk and Smad activation and an inability of Filamin-A deficient valve interstitial cells to effectively remodel the increased ECM production through a β1-integrin mechanism. As a consequence, loss of Filamin-A function results in increased ECM production and generation of a myxomatous phenotype characterized by improperly compacted mitral valve tissue. Anat Rec, 302:117-124, 2019. © 2018 Wiley Periodicals, Inc.

摘要

二尖瓣脱垂(MVP)影响 2.4%的人口,其病因尚未完全阐明。最近的遗传研究开始揭示 MVP 的复杂性,通过这些努力,发现 FLNA(细丝蛋白-A)基因的突变是致病原因。我们的体内和体外研究验证了这些遗传发现,并揭示了 FLNA 是瓣膜形态发生的中央调节剂。FLNA 突变导致黏液样二尖瓣疾病的机制目前尚不清楚,但可能涉及与 FLNA 蛋白突变区域相关的蛋白,如小 GTPase 信号蛋白 R-Ras。在此,我们报告 Filamin-A 是 R-Ras 表达和 Ras-Mek-Erk 通路激活所必需的。Ras/Erk 通路的丧失与 pSmad2/3 的过度激活、细胞外基质(ECM)产生增加和二尖瓣增大相关。对二尖瓣中整合素受体的分析表明,Filamin-A 是 β1-整合素表达所必需的,并为 ECM 紧缩受损和瓣叶增大提供了潜在的机制。我们的数据支持 Filamin-A 作为一种调节 Erk 和 Smad 激活之间平衡的蛋白质,并且 Filamin-A 缺乏的心脏瓣膜间质细胞不能通过 β1-整合素机制有效地重塑增加的 ECM 产生。因此,Filamin-A 功能的丧失导致 ECM 产生增加,并产生以不当紧缩的二尖瓣组织为特征的黏液样表型。解剖记录,302:117-124,2019。©2018 威利父子公司

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1217/6312478/ec59f8c8f2de/nihms-982162-f0001.jpg

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