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Induction of glutathione peroxidase in response to inactivation by nitric oxide.

机译:响应一氧化氮的灭活而诱导谷胱甘肽过氧化物酶。

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To determine effect of nitric oxide (NO) on cellular glutathione peroxidase (GPX) level in living cells, we measured the activity, protein and mRNA of GPX in rat kidney (KNRK) cells under a high NO condition. Combined treatment of lipopolysaccharide (LPS, 1 microgram/ml) and tumor necrosis factor-alpha (TNF-alpha, 50 ng/ml) synergistically enhanced (23-folds) nitrite production from KNRK cells. This was suppressed by an inducible NO synthase (iNOS) inhibitor (aminoguanidine, N-nitro-L-arginine methylester hydrochloride) and arginase. iNOS expression was detected by RT-PCR in the treated cells. GPX was inactivated irreversibly when the cells had been homogenized before exposure to a NO donor, S-nitroso-N-acetylpenicillamine (SNAP). In living KNRK cells, SNAP and LPS + TNF-alpha exerted a transient effect on the GPX activity. The treatment with SNAP (200 microM) or sodium nitroprusside (200 microM) enhanced GPX gene expression, which was blocked by a NO scavenger, 2-phenyl-4,4,5,5,-tetramethylimidazoline-1-oxyl-3-oxide. GPX mRNA was markedly increased by the treatment with LPS + TNF-alpha, and aminoguanidine blocked the effect. In cells metabolically labeled with 75Se, LPS + TNF-alpha accelerated the incorporation of radioactivity into GPX molecule by 2.1-fold. These results suggest that inactivation of GPX by NO triggers a signal for inducing GPX gene expression in KNRK cells, thereby restoring the intracellular level of this indispensable enzyme.
机译:为了确定一氧化氮(NO)对活细胞中细胞谷胱甘肽过氧化物酶(GPX)水平的影响,我们在高NO条件下测量了大鼠肾脏(KNRK)细胞中GPX的活性,蛋白质和mRNA。脂多糖(LPS,1微克/毫升)和肿瘤坏死因子-α(TNF-α,50 ng / ml)的联合治疗从KNRK细胞协同增强亚硝酸盐的产生(23倍)。这被诱导型NO合酶(iNOS)抑制剂(氨基胍,N-硝基-L-精氨酸甲酯盐酸盐)和精氨酸酶抑制。通过RT-PCR在处理的细胞中检测iNOS表达。当细胞暴露于NO供体S-亚硝基-N-乙酰青霉胺(SNAP)之前均质化时,GPX不可逆地失活。在活的KNRK细胞中,SNAP和LPS +TNF-α对GPX活性产生了短暂的影响。用SNAP(200 microM)或硝普钠(200 microM)处理可增强GPX基因表达,该基因被NO清除剂2-苯基-4,4,5,5,-四甲基咪唑啉-1-氧基-3-氧化物所阻断。 LPS +TNF-α处理可显着增加GPX mRNA的表达,而氨基胍可阻断该作用。在以75Se代谢标记的细胞中,LPS +TNF-α将放射性掺入GPX分子的速度提高了2.1倍。这些结果表明,NO导致GPX失活会触发信号,诱导KNRK细胞中GPX基因表达,从而恢复该必不可少的酶的细胞内水平。

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