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首页> 外文期刊>American Journal of Physiology >PECAM-1 and caveolae form the mechanosensing complex necessary for NOX2 activation and angiogenic signaling with stopped flow in pulmonary endothelium
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PECAM-1 and caveolae form the mechanosensing complex necessary for NOX2 activation and angiogenic signaling with stopped flow in pulmonary endothelium

机译:PECAM-1和海绵体形成NOX2激活和血管生成信号转导所必需的机械传感复合物,并在肺血管内皮中停止流动

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摘要

We showed that stop of flow triggers a mechanosignaling cascade that leads to the generation of reactive oxygen species (ROS); however, a mechanosensor coupled to the cytoskeleton that could potentially transduce flow stimulus has not been identified. We showed a role for KATP channel, caveolae (caveolin-1), and NADPH oxidase 2 (NOX2) in ROS production with stop of flow. Based on reports of a mechanosensory complex that includes platelet endothelial cell adhesion molecule-1 (PECAM-1) and initiates signaling with mechanical force, we hypothesized that PECAM-1 could serve as a mechanosensor in sensing disruption of flow. Using lungs in situ, we observed that ROS production with stop of flow was significantly reduced in PECAM- 1-/- lungs compared with lungs from wild-type (WT) mice. Lack of PECAM-1 did not affect NOX2 activation machinery or the caveolin- 1 expression or caveolae number in the pulmonary endothelium. Stop of flow in vitro triggered an increase in angiogenic potential of WT pulmonary microvascular endothelial cells (PMVEC) but not of PECAM-1-/- PMVEC. Obstruction of flow in lungs in vivo showed that the neutrophil infiltration as observed in WT mice was significantly lowered in PECAM-1-/- mice. With stop of flow, WT lungs showed higher expression of the angiogenic marker VEGF compared with untreated (sham) and PECAM-1-/- lungs. Thus PECAM-1 (and caveolae) are parts of the mechanosensing machinery that generates superoxide with loss of shear; the resultant ROS potentially drives neutrophil influx and acts as an angiogenic signal.
机译:我们表明,停止流动会触发机械信号级联,从而导致活性氧(ROS)的产生。然而,还没有发现与细胞骨架耦合的机械传感器,它可能潜在地传导血流刺激。我们显示了KATP通道,caveolae(caveolin-1)和NADPH氧化酶2(NOX2)在ROS生产中的作用。基于包含血小板内皮细胞粘附分子1(PECAM-1)并通过机械力启动信号传递的机械感觉复合物的报道,我们假设PECAM-1可以用作感测血流中断的机械传感器。使用原位肺,我们观察到与野生型(WT)小鼠的肺相比,PECAM-1-/-肺中具有停止流动的ROS产生显着减少。缺乏PECAM-1不会影响NOX2激活机制或肺内皮中小窝蛋白1的表达或小窝数目。体外血流停止触发了WT肺微血管内皮细胞(PMVEC)的血管生成潜能的增加,但未引起PECAM-1-/-PMVEC的增加。体内肺部流动的阻塞表明,在WT小鼠中观察到的中性粒细胞浸润在PECAM-1-/-小鼠中显着降低。随着流量的停止,与未处理(假手术)和PECAM-1-/-肺相比,WT肺显示出更高的血管生成标记VEGF表达。因此,PECAM-1(和小孔)是机械传感机械的一部分,可产生超氧化物而剪切力降低。产生的ROS可能会驱动中性粒细胞流入并充当血管生成信号。

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