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首页> 外文期刊>American Journal of Physiology >Cross talk between prostacyclin and nitric oxide under shear in smooth muscle cell: role in monocyte adhesion.
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Cross talk between prostacyclin and nitric oxide under shear in smooth muscle cell: role in monocyte adhesion.

机译:平滑肌细胞在剪切作用下前列环素与一氧化氮之间的串扰:在单核细胞粘附中的作用。

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摘要

We tested the hypothesis that at sites of vascular damage, vessel homeostasis is maintained through the cross talk of shear-induced production of prostacyclin and nitric oxide (NO) in vascular smooth muscle cells (VSMC). Confluent A7r5 cells derived from rat aortic VSMC and mesenteric VSMC were exposed to shear stress at 15 dyn/cm(2) for 90 min with the use of a cone-plate device, and productions of prostacyclin and NO were examined. Shear stress increased cumulative production of prostacyclin by 3- to 3.5-fold and that of NO by 6- to 7.5-fold. Western blot analysis showed that inducible NO synthase protein was expressed after shear stress in both types of VSMC. Inhibition of NO synthase enhanced the shear-induced production of prostacyclin from 40 to 60%. Shear-induced production of NO was suppressed by 70% after treatment with 10(-4) M of indomethacin. A7r5 cells adhesiveness for monocytes was suppressed by 50% after shear stress. This suppression was abolished by pretreatment with 10(-4) M of indomethacin, whereas inhibition of NO synthase only minimally inhibited it. We conclude that there is a cross talk of shear-induced production of prostacyclin and NO in VSMC. At sites of vascular damage, prostacyclin synthesis may prevent monocyte adhesiveness for VSMC through the concomitant enhancement of NO production.
机译:我们测试了以下假设:在血管损伤部位,通过剪切诱导血管平滑肌细胞(VSMC)中前列环素和一氧化氮(NO)的产生,维持了血管的稳态。使用锥板装置,将源自大鼠主动脉VSMC和肠系膜VSMC的融合A7r5细胞暴露于15 dyn / cm(2)的剪切应力下90分钟,并检查前列环素和NO的产生。剪应力使前列环素的累积产量增加了3至3.5倍,而NO的累积产量增加了6至7.5倍。蛋白质印迹分析表明,在两种类型的VSMC中,剪切应力后均可表达可诱导的NO合酶蛋白。 NO合酶的抑制将剪切诱导的前列环素生成从40%提高到60%。用吲哚美辛10(-4)M处理后,剪切诱导的NO产生被抑制了70%。剪切应力后,A7r5细胞对单核细胞的粘附性降低了50%。通过用10(-4)M消炎痛预处理可消除这种抑制作用,而对NO合酶的抑制作用则只有极小程度的抑制作用。我们得出的结论是,在VSMC中存在剪切引起的前列环素和NO产生的相互影响。在血管损伤部位,前列环素的合成可能通过同时增加NO的产生而阻止单核细胞对VSMC的粘附。

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