Sedding Daniel G, Homann Matthias, Seay Ulrike, Tillmanns Harald, Preissner Klaus T, Braun-Dullaeus Ruediger C
Internal Medicine/Cardiology, Dresden University of Technology, Fetscherstrasse 76, D-01307 Dresden, Germany.
FASEB J. 2008 Feb;22(2):579-89. doi: 10.1096/fj.07-8853com. Epub 2007 Sep 10.
Mechanical forces contribute to vascular remodeling processes. Elevated mechanical stress causes apoptosis of vascular smooth muscle cells (VSMCs) within the media. This study examined the role of the cystein protease calpain in force-induced vascular cell apoptosis and its effect on injury-induced vascular remodeling processes. VSMCs were exposed to cyclic tensile force in vitro, which resulted in increased p53 protein expression and transcriptional activity as well as a significant increase of apoptotic VSMCs. Apoptosis was prevented by the p53 inhibitor pifithrin and by p53 antisense oligonucleotides, indicating dependency of force-induced apoptosis on p53. Simultaneously, calpain activity increased by mechanical stress. Prevention of calpain activation by calpeptin or antisense oligonucleotides augmented strain-induced p53 expression and transcriptional activity, resulting in a further increase of apoptotic rate. p53 protein was directly disintegrated by activated calpain. The in vivo relevance of the findings was tested: pharmacologic inhibition of initial calpain activation augmented early apoptosis of medial VSMCs 24 h after balloon injury in a p53-dependent manner but resulted in a marked increase in late neointima formation. We conclude that calpain counteracts mechanically induced excessive VSMC apoptosis through its p53-degrading properties, which identifies calpain as a key regulator of mechanosensitive remodeling processes of the vascular wall.
机械力参与血管重塑过程。机械应力升高会导致血管中膜内的血管平滑肌细胞(VSMC)凋亡。本研究探讨了半胱氨酸蛋白酶钙蛋白酶在力诱导的血管细胞凋亡中的作用及其对损伤诱导的血管重塑过程的影响。体外将VSMC暴露于循环拉伸力下,这导致p53蛋白表达和转录活性增加以及凋亡VSMC显著增多。p53抑制剂pifithrin和p53反义寡核苷酸可阻止凋亡,表明力诱导的凋亡依赖于p53。同时,机械应力使钙蛋白酶活性增加。钙蛋白酶抑制剂或反义寡核苷酸阻止钙蛋白酶激活会增强应变诱导的p53表达和转录活性,导致凋亡率进一步升高。活化的钙蛋白酶直接分解p53蛋白。对这些发现的体内相关性进行了测试:对初始钙蛋白酶激活的药理学抑制以p53依赖的方式增强了球囊损伤后24小时血管中膜VSMC的早期凋亡,但导致晚期新生内膜形成显著增加。我们得出结论,钙蛋白酶通过其降解p53的特性抵消机械诱导的VSMC过度凋亡,这表明钙蛋白酶是血管壁机械敏感重塑过程的关键调节因子。