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首页> 外文期刊>Biomaterials >Activation of human aortic valve interstitial cells by local stiffness involves YAP-dependent transcriptional signaling
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Activation of human aortic valve interstitial cells by local stiffness involves YAP-dependent transcriptional signaling

机译:通过局部刚度激活人主动脉瓣间质细胞涉及依赖依赖性转录信号传导

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Differentiation of valve interstitial cells (VICs) intopro-calcific cells is one of the central events in calcific aortic valve (AoV) disease (CAVD). While the paracrine pathways and the responsivity of VICs to mechanical compliance of the surrounding environment are well characterized, the molecular programming related to variations in local stiffness, and its link to cytoskeleton dynamics, is less consolidated. By using a simple method to produce 2D poly-acrylamide gels with stiffness controlled with atomic force microscopy (AFM), we manufactured adhesion substrates onto which human VICs from stenotic valves were plated, and subsequently investigated for cytoskeleton dynamics and activation of the mechanosensing-related transcription factor YAP. As a comparison, we employed VICs from patients undergoing valve substitution for valve insufficiency, a non-calcific AoV disease, which does not involve extensive inflammation. While the two VICs types did not differ for basic responses onto substrates with different stiffness values (e.g. adhesion and proliferation), they were subject to a different dynamics of stiffness-dependent YAP nuclear shuttling, revealing for the first time an intracellular force transduction mechanism distinctive for calcific aortic valve disease. In VICs from stenotic valves, YAP nuclear translocation occurred in concert with an increase in cytoskeleton tensioning and loading of the myofibroblast-specific protein αSMA onto the F-actin cytoskeleton. AFM force mapping performed along radial sections of human calcific valve leaflets identified, finally, areas with high and low levels of rigidity within a similar range to those controlling YAP nuclear translocationin?vitro. Since VICs juxtaposed to these areas exhibited nuclear localized YAP, we conclude that subtle variations in matrix stiffness are involved in mechanosensing-dependent VICs activation and pathological differentiation in CAVD.
机译:瓣膜间质细胞(VICS)IntoPro-Callic Cell的分化是钙化主动脉瓣(AOV)疾病(CAVD)中的中央事件之一。虽然旁静脉途径和VIC的响应性的循环符合周围环境的机械顺应性很好,但与局部刚度的变化有关的分子规划,并且其与细胞骨架动力学的链接不太合并。通过使用具有用原子力显微镜(AFM)控制的刚度的简单方法,使用原子力显微镜(AFM),我们制造了粘附基材,镀粘性瓣膜的人类vics的粘附基材,随后研究了细胞骨架动力学和机械损伤的激活转录因子yap。作为比较,我们从经历瓣膜替代的患者中使用了VIS瓣膜功能亢进,这是一种不涉及广泛炎症的非钙化AOV疾病。虽然两个VICS类型对具有不同刚度值的基材(例如粘附和增殖)的基本响应没有差异,但它们受到刚度依赖性磁性核心周血的不同动态,首次揭示了一个特殊的细胞内的转导机制对于钙化主动脉瓣病。从狭窄阀的vics中,yap核易位在音乐会上发生术语,随着细胞骨架张紧和将肌纤维细胞特异性蛋白αsma的加载到F-actin细胞骨架上。沿着人钙瓣叶的径向部分进行的AFM力映射,最后,在类似范围内具有高且低水平的刚性的区域与控制yap核转运蛋白的那些。由于VICS对这些区域并置出来表现出核局部的yap,我们得出结论,基质刚度的微妙变化参与了CAVD中的机械静脉依赖性的VICS活化和病理分化。

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