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首页> 外文期刊>Biochimica et biophysica acta. Molecular cell research >Laminar shear stress regulates mitochondrial dynamics, bioenergetics responses and PRX3 activation in endothelial cells
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Laminar shear stress regulates mitochondrial dynamics, bioenergetics responses and PRX3 activation in endothelial cells

机译:层流剪切应力调节内皮细胞中的线粒体动力学,生物能响应和PRX3活化

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Endothelial cells in the vascular system are constantly subjected to the frictional force of shear stress due to the pulsatile nature of blood flow. Although several proteins form part of the shear stress mechano-sensing pathway, the identification of mechano-transducing pathways is largely unknown. Given the increasing evidence for a signaling function of mitochondria in endothelial cells, the aim of this study was to investigate their role as mechano-sensor organelles during laminar shear stress (LSS). We demonstrated that LSS activates intracellular signaling pathways that modulate not only mitochondrial dynamics but also mitochondrial function. At early time points of LSS, the fission-related protein Drp1 was recruited from the cytosol to mitochondria and activated mitochondrial fission. LSS-dependent increase in intracellular Ca2+ concentration was indispensable for mitochondrial fission. As alterations in mitochondrial dynamics have been related to changes in bioenergetics profiles, we studied mitochondrial function after LSS. We found that LSS decreased respiration rate, increased mitochondrial membrane potential and promoted the mitochondrial generation of ROS with the subsequent oxidation and activation of the antioxidant enzyme PRX3. Our data support a novel and active role for mitochondria in endothelial cells as active players, able to transduce the mechanical force of shear stress in the vascular endothelium into a biological response.
机译:由于血流的脉动性质,血管系统中的内皮细胞始终受到剪切应力的摩擦力。尽管几种蛋白质形成了切应力机械感测途径的一部分,但对机械传导途径的鉴定仍非常未知。鉴于越来越多的证据表明线粒体在内皮细胞中具有信号传导功能,因此本研究的目的是研究其在层流切应力(LSS)期间作为机械传感器细胞器的作用。我们证明LSS激活不仅调节线粒体动力学而且还调节线粒体功能的细胞内信号通路。在LSS的早期,裂变相关蛋白Drp1从细胞质中募集到线粒体并激活了线粒体裂变。 LSS依赖的细胞内Ca2 +浓度增加对于线粒体裂变是必不可少的。由于线粒体动力学的变化与生物能学特征的变化有关,我们研究了LSS后的线粒体功能。我们发现LSS降低了呼吸速率,增加了线粒体膜电位,并促进了线粒体ROS的生成,随后氧化并激活了抗氧化酶PRX3。我们的数据支持线粒体在内皮细胞中作为活跃分子的新的活跃作用,能够将血管内皮中的剪切应力的机械力转化为生物学反应。

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