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Oxygen Consumption Rates and Oxygen Concentration in Molt-4 Cells and Their mtDNA Depleted (ρ0) Mutants

机译:Molt-4细胞及其mtDNA耗尽的(ρ0)突变体的耗氧率和耗氧量

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摘要

Respiratory deficient cell lines are being increasingly used to elucidate the role of mitochondria and to understand the pathophysiology of mitochondrial genetic disease. We have investigated the oxygen consumption rates and oxygen concentration in wild-type (WT) and mitochondrial DNA (mtDNA) depleted (ρ0) Molt-4 cells. Wild-type Molt-4 cells have moderate oxygen consumption rates, which were significantly reduced in the ρ0 cells. PCMB (p-chloromercurobenzoate) inhibited the oxygen consumption rates in both WT and ρ0 cells, whereas potassium cyanide decreased the oxygen consumption rates only in WT Molt-4 cells. Menadione sodium bisulfite (MSB) increased the oxygen consumption rates in both cell lines, whereas CCCP (carbonyl cyanide m-chlorophenylhydrazone) stimulated the oxygen consumption rates only in WT Molt-4 cells. Superoxide radical adducts were observed in both WT and ρ0 cells when stimulated with MSB. The formation of this adduct was inhibited by PCMB but not by potassium cyanide. These results suggest that the reactive oxygen species (ROS) induced by MSB were at least in part produced via a mitochondrial independent pathway. An oxygen gradient between the extra- and intracellular compartments was observed in WT Molt-4 cells, which further increased when cells were stimulated by CCCP and MSB. The results are consistent with our earlier findings suggesting that such oxygen gradients may be a general phenomenon found in most or all cell systems under appropriate conditions.
机译:呼吸系统缺陷细胞系正越来越多地用于阐明线粒体的作用并了解线粒体遗传疾病的病理生理学。我们研究了耗竭了(ρ 0 )Molt-4细胞的野生型(WT)和线粒体DNA(mtDNA)的耗氧率和耗氧浓度。野生型Molt-4细胞的耗氧率中等,在ρ 0 细胞中明显降低。 PCMB(对氯汞基苯甲酸酯)抑制WT和ρ 0 细胞的耗氧率,而氰化钾仅降低WT Molt-4细胞的耗氧率。甲萘醌亚硫酸氢钠(MSB)增加了两种细胞系的耗氧率,而CCCP(羰基氰化物间氯苯基hydr)仅刺激WT Molt-4细胞的耗氧率。 MSB刺激WT和ρ 0 细胞均出现超氧化物自由基加合物。该加合物的形成受PCMB抑制,但不受氰化钾抑制。这些结果表明,MSB诱导的活性氧(ROS)至少部分是通过线粒体非依赖性途径产生的。在WT Molt-4细胞中观察到细胞外和细胞内区室之间的氧梯度,当CCCP和MSB刺激细胞时,氧梯度进一步增加。结果与我们先前的发现一致,表明这种氧梯度可能是在适当条件下在大多数或所有细胞系统中发现的普遍现象。

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