首页> 美国卫生研究院文献>The Journal of Biological Chemistry >Functional Role of HSP90 Complexes with Endothelial Nitric-oxide Synthase (eNOS) and Calpain on Nitric Oxide Generation in Endothelial Cells
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Functional Role of HSP90 Complexes with Endothelial Nitric-oxide Synthase (eNOS) and Calpain on Nitric Oxide Generation in Endothelial Cells

机译:HSP90配合物与内皮一氧化氮合酶的功能作用 (eNOS)和钙蛋白酶对内皮细胞一氧化氮产生的影响 细胞

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摘要

Although several reports have indicated that eNOS is a highly sensitive calpain substrate, the occurrence of a concomitant Ca2+-dependent activation of the synthase and of the protease has never been analyzed in specific direct experiments. In this study, we have explored in vivo how eNOS can undergo Ca2+-dependent translocation and activation, protected against degradation by activated calpain. Here we demonstrate that following a brief exposure to Ca2+-loading, the cytosolic eNOS-HSP90 complex recruits calpain in a form in which the chaperone and the synthase are almost completely resistant to digestion by the protease. Furthermore, in the presence of the HSP90 inhibitor geldanamycin, a significant decrease in NO production and an extensive degradation of eNOS protein occurs, indicating that dissociation from membranes and association with the chaperone is correlated to the protection of the synthase. Experiments with isolated membrane preparations confirm the primary role of HSP90 in dissociation of eNOS from caveolae. Prolonged exposure of cells to Ca2+-loading resulted in an extensive degradation of both eNOS and HSP90, accompanied by a large suppression of NO production. We propose that the protective effect exerted by HSP90 on eNOS degradation mediated by calpain represents a novel and critical mechanism that assures the reversibility of the intracellular trafficking and activation of the synthase.
机译:尽管有报道表明eNOS是一种高度敏感的钙蛋白酶底物,但从未在特定的直接实验中分析过伴随Ca 2 + 依赖的合酶和蛋白酶的激活。在这项研究中,我们已经在体内探索了eNOS如何经历Ca 2 + 依赖的移位和激活,并被激活的钙蛋白酶保护免受降解。在这里,我们证明,在短暂暴露于Ca 2 + 负荷后,胞质eNOS-HSP90复合物以伴侣和合酶几乎完全抵抗蛋白酶消化的形式募集钙蛋白酶。此外,在HSP90抑制剂格尔德霉素的存在下,NO生成量显着下降,eNOS蛋白大量降解,这表明与膜的解离以及与伴侣的结合与合酶的保护有关。分离的膜制剂的实验证实了HSP90在从小窝中解离eNOS的主要作用。细胞长时间暴露于Ca 2 + 负荷会导致eNOS和HSP90的广泛降解,并伴随着NO生成的大量抑制。我们建议 HSP90对钙蛋白酶介导的eNOS降解的保护作用 代表了一种新颖而关键的机制,可确保 细胞内运输和合酶激活。

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