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大鼠肝窦内皮细胞系中一氧化氮(NO)诱导细胞死亡时的临界氧浓度和一氧化氮浓度

Critical O2 and NO concentrations in NO-induced cell death in a rat liver sinusoidal endothelial cell line.

作者信息

Dehne Nathalie, Li Tongju, Petrat Frank, Rauen Ursula, de Groot Herbert

机构信息

Institut für Physiologische Chemie, Universitätsklinikum Essen, D-45122 Essen, Germany.

出版信息

Biol Chem. 2004 Mar-Apr;385(3-4):341-9. doi: 10.1515/BC.2004.030.

Abstract

Nitric oxide (NO) plus oxygen (O2) are known to cause cell damage via formation of reactive nitrogen species. NO itself directly inhibits cytochrome oxidase of the mitochondrial respiratory chain in competition with O2, thus inducing a hypoxic-like injury. To assess the critical NO and O2 concentrations for both mechanisms of NO-induced cell injury, cells of a rat liver sinusoidal endothelial cell line were incubated in the presence of the NO donor spermineNONOate at different O2 concentrations, and their loss of viability was determined by the release of lactate dehydrogenase. Protection by ascorbic acid was used as indication for the involvement of reactive nitrogen species, whereas a hypoxic-like injury was indicated by the protective effects of glycine and glucose and the increase in NAD(P)H fluorescence. High concentrations of NO (approx. 10 microM NO) and O2 (21% O2) were required to induce endothelial cell death mediated by formation of reactive nitrogen species. On the other hand, pathophysiologically relevant NO concentrations at low but physiological O2 concentrations (ca. 2 microM NO at 5% O2 and about 1 microM NO at 2% O2) induced hypoxic-like cell death in the endothelial cells that was prevented by the presence of glucose.

摘要

已知一氧化氮(NO)加氧气(O₂)会通过形成活性氮物质导致细胞损伤。NO本身在与O₂的竞争中直接抑制线粒体呼吸链的细胞色素氧化酶,从而引发类似缺氧的损伤。为了评估NO诱导细胞损伤的两种机制的关键NO和O₂浓度,将大鼠肝窦状内皮细胞系的细胞在不同O₂浓度下于NO供体精胺NONOate存在的情况下进行孵育,并通过乳酸脱氢酶的释放来确定其活力丧失。抗坏血酸的保护作用被用作活性氮物质参与的指标,而甘氨酸和葡萄糖的保护作用以及NAD(P)H荧光的增加则表明存在类似缺氧的损伤。需要高浓度的NO(约10μM NO)和O₂(21% O₂)来诱导由活性氮物质形成介导的内皮细胞死亡。另一方面,在低但生理的O₂浓度下(5% O₂时约2μM NO和2% O₂时约1μM NO),病理生理相关的NO浓度会在内皮细胞中诱导类似缺氧的细胞死亡,而葡萄糖的存在可防止这种情况发生。

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