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首页> 外文期刊>Conference Papers in Science >Differential Effect of Hypoxia in Human and Mouse Vascular Smooth Muscle Cell Migration through LRP1-pPyk2-MMP-9 Axis
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Differential Effect of Hypoxia in Human and Mouse Vascular Smooth Muscle Cell Migration through LRP1-pPyk2-MMP-9 Axis

机译:低氧通过LRP1-pPyk2-MMP-9轴对人和小鼠血管平滑肌细胞迁移的差异作用

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LRP1-pPyk2 axis is essential for the upregulatory effect of hypoxia on MMP-9 activation and human VSMC (hVSMC) migration. Currently, there are not efficient models for the translational study of atherosclerosis. The morphological and physiological features of atherosclerosis are different between human and animal models, particularly in mouse models. Therefore, the aim of current investigation was to compare the effect of hypoxia on LRP1-Pyk2-MMP-9 axis in human and mouse vascular smooth muscle cells (mVSMC) and its consequences on VSMC migration. We demonstrated that hypoxic modulation of LRP1-pPyk2-MMP-9 axis is opposite between hVSMC and mVSMC. The modulation of LRP1/pPyk2 levels by hypoxia is positive in hVSMC but negative in mVSMC. We showed that the inverse effect of LRP1/pPyk2 axis is associated with a differential effect of hypoxia on MMP-9 expression and activation. Hypoxia-induced MMP-9 activation was concomitant with an increased hVSMC migratory capacity. Surprisingly, mVSMC migrate under hypoxic conditions despite the downregulatory effect of hypoxia on MMP-9 expression or activation. Our results highlight the crucial role of LRP1-pPyk2-MMP-9 axis in vascular cell migration. In addition, we propose that the extrapolation of results from animal models to humans is not suitable for this specific mechanism in hypoxia-related vascular conditions.
机译:LRP1-pPyk2轴对于缺氧对MMP-9激活和人VSMC(hVSMC)迁移的上调作用至关重要。当前,没有有效的模型用于动脉粥样硬化的翻译研究。人和动物模型之间,尤其是小鼠模型中,动脉粥样硬化的形态和生理特征是不同的。因此,当前研究的目的是比较缺氧对人和小鼠血管平滑肌细胞(mVSMC)中LRP1-Pyk2-MMP-9轴的作用及其对VSMC迁移的影响。我们证明了hVSMC和mVSMC之间LRP1-pPyk2-MMP-9轴的低氧调节是相反的。低氧对LRP1 / pPyk2水平的调节在hVSMC中为正,而在mVSMC中为负。我们表明,LRP1 / pPyk2轴的反向作用与缺氧对MMP-9表达和激活的差异作用有关。缺氧诱导的MMP-9激活与hVSMC迁移能力增加同时发生。出乎意料的是,尽管缺氧对MMP-9表达或激活有下调作用,但mVSMC在缺氧条件下仍会迁移。我们的结果突出了LRP1-pPyk2-MMP-9轴在血管细胞迁移中的关键作用。此外,我们建议从动物模型向人类的结果推断不适合与缺氧相关的血管状况中的这种特定机制。

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