肺内皮细胞线粒体电子传递链抑制后ph依赖性氧化剂的产生。

M. Cutaia, J. Kroczyński, K. Tollefson
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引用次数: 13

摘要

我们研究了细胞内pH (pHi)和Na/H拮抗剂活性变化对细胞内氧化剂产生的影响。在线粒体电子传递和糖酵解抑制剂(抗霉素/2-脱氧葡萄糖,A/D)处理后,用氧化敏感探针(2',7'-二氯荧光素双醋酸酯[H2DCF],二氢乙啶[DHE])测量氧化剂的产生。A/D处理在2小时内以剂量依赖的方式增加了氧化剂的产生。2-脱氧葡萄糖的遗漏没有改变氧化剂产生的大小。在线粒体电子传递链中更近端的抑制抑制了氧化剂的产生。这些数据表明,线粒体电子传递链是氧化剂产生的来源。荧光成像实验证实了在这些条件下增加的氧化剂产生的线粒体起源。降低pHi和抑制Na/H交换(酸中毒,特异性Na/H交换抑制剂)的操作减弱了氧化剂的产生,而提高pHi(莫能菌素)的操作增强了氧化剂的产生。用ph不敏感探针(DHE)的结果证实,氧化剂的产生是ph依赖的。在A/D处理后6小时,氧化剂的产生导致细胞活力显著丧失。这些结果表明,HPAEC中抑制线粒体电子传递后产生的氧化剂是ph依赖性的,可能通过增加内源性氧化应激导致内皮细胞损伤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
pH-dependent oxidant production following inhibition of the mitochondrial electron transport chain in pulmonary endothelial cells.
We investigated the effect of changes in intracellular pH (pHi) and Na/H antiport activity on intracellular oxidant production in human pulmonary artery endothelial cells (HPAEC) following disruption of cellular metabolism. Oxidant production was measured with oxidant-sensitive probes (2',7'-dichlorofluorescein diacetate [H2DCF], dihydroethidium [DHE]) following treatment with inhibitors of mitochondrial electron transport and glycolysis (antimycin/2-deoxyglucose, A/D). A/D treatment increased oxidant production in a dose-dependent fashion over 2 hours. Omission of 2-deoxyglucose did not alter the magnitude of oxidant production. Inhibition at more proximal sites in the mitochondrial electron transport chain inhibited oxidant production. These data suggested that the mitochondrial electron transport chain was the source of oxidant production. Fluorescent imaging experiments confirmed the mitochondrial origin of the increased oxidant production under these conditions. Maneuvers that reduced pHi and inhibited Na/H exchange (acidosis, specific Na/H exchange inhibitors) attenuated oxidant production, whereas maneuvers that raised pHi (monensin) potentiated oxidant production. The results with the pH-insensitive probe (DHE) confirmed that oxidant production was pH-dependent. Oxidant production preceded significant loss of cell viability at 6 h following A/D treatment. These results demonstrate that oxidant production following inhibition of mitochondrial electron transport in HPAEC is pH-dependent and may contribute to endothelial cell injury by increasing endogenous oxidative stress.
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