首页> 外文期刊>Journal of Cardiovascular Development and Disease >MVP-Associated Filamin A Mutations Affect FlnA-PTPN12 (PTP-PEST) Interactions
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MVP-Associated Filamin A Mutations Affect FlnA-PTPN12 (PTP-PEST) Interactions

机译:MVP相关的丝蛋白A突变影响FlnA-PTPN12(PTP-PEST)相互作用。

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Although the genetic basis of mitral valve prolapse (MVP) has now been clearly established, the molecular and cellular mechanisms involved in the pathological processes associated to a specific mutation often remain to be determined. The FLNA gene (encoding Filamin A; FlnA) was the first gene associated to non-syndromic X-linked myxomatous valvular dystrophy, but the impacts of the mutations on its function remain un-elucidated. Here, using the first repeats (1–8) of FlnA as a bait in a yeast two-hybrid screen, we identified the tyrosine phosphatase PTPN12 (PTP-PEST) as a specific binding partner of this region of FlnA protein. In addition, using yeast two-hybrid trap assay pull down and co-immunoprecipitation experiments, we showed that the MVP-associated FlnA mutations (G288R, P637Q, H743P) abolished FlnA/PTPN12 interactions. PTPN12 is a key regulator of signaling pathways involved in cell-extracellular matrix (ECM) crosstalk, cellular responses to mechanical stress that involve integrins, focal adhesion transduction pathways, and actin cytoskeleton dynamics. Interestingly, we showed that the FlnA mutations impair the activation status of two PTPN12 substrates, the focal adhesion associated kinase Src, and the RhoA specific activating protein p190RhoGAP. Together, these data point to PTPN12/FlnA interaction and its weakening by FlnA mutations as a mechanism potentially involved in the physiopathology of FlnA-associated MVP.
机译:尽管二尖瓣脱垂(MVP)的遗传基础已经明确,但与特定突变相关的病理过程所涉及的分子和细胞机制仍待确定。 FLNA基因(编码Filamin A; FlnA)是第一个与非综合征X连锁粘液性瓣膜营养不良有关的基因,但突变对其功能的影响尚不清楚。在这里,我们使用FlnA的第一个重复序列(1–8)作为酵母双杂交筛选的诱饵,我们确定酪氨酸磷酸酶PTPN12(PTP-PEST)是该FlnA蛋白区域的特异性结合伴侣。此外,使用酵母双杂交陷阱分析下拉和共同免疫沉淀实验,我们显示MVP相关的FlnA突变(G288R,P637Q,H743P)消除了FlnA / PTPN12的相互作用。 PTPN12是涉及细胞-细胞外基质(ECM)串扰,涉及整合素的细胞对机械应力的细胞反应,粘着传导途径和肌动蛋白细胞骨架动力学的关键调节因子。有趣的是,我们表明FlnA突变会损害两种PTPN12底物,与粘着相关的激酶Src和RhoA特异性激活蛋白p190RhoGAP的激活状态。总之,这些数据表明PTPN12 / FlnA相互作用及其因FlnA突变而减弱的作用,可能是与FlnA相关的MVP的生理病理学相关的机制。

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