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Influence of superoxide on myeloperoxidase kinetics measured with a hydrogen peroxide electrode.

机译:用过氧化氢电极测量过氧化物对髓过氧化物酶动力学的影响。

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摘要

Stimulated neutrophils discharge large quantities of superoxide (O2.-), which dismutates to form H2O2. In combination with Cl-, H2O2 is converted into the potent oxidant hypochlorous acid (HOCl) by the haem enzyme myeloperoxidase. We have used an H2O2 electrode to monitor H2O2 uptake by myeloperoxidase, and have shown that in the presence of Cl- this accurately represents production of HOCl. Monochlorodimedon, which is routinely used to assay production of HOCl, inhibited H2O2 uptake by 95%. This result confirms that monochlorodimedon inhibits myeloperoxidase, and that the monochlorodimedon assay grossly underestimates the activity of myeloperoxidase. With 10 microM-H2O2 and 100 mM-Cl-, myeloperoxidase had a neutral pH optimum. Increasing the H2O2 concentration to 100 microM lowered the pH optimum to pH 6.5. Above the pH optimum there was a burst of H2O2 uptake that rapidly declined due to accumulation of Compound II. High concentrations of H2O2 inhibited myeloperoxidase and promoted the formation of Compound II. These effects of H2O2 were decreased at higher concentrations of Cl-. We propose that H2O2 competes with Cl- for Compound I and reduces it to Compound II, thereby inhibiting myeloperoxidase. Above pH 6.5, O2.- generated by xanthine oxidase and acetaldehyde prevented H2O2 from inhibiting myeloperoxidase, increasing the initial rate of H2O2 uptake. O2.- allowed myeloperoxidase to function optimally with 100 microM-H2O2 at pH 7.0. This occurred because, as previously demonstrated, O2.- prevents Compound II from accumulating by reducing it to ferric myeloperoxidase. In contrast, at pH 6.0, where Compound II did not accumulate, O2.- retarded the uptake of H2O2. We propose that by generating O2.- neutrophils prevent H2O2 and other one-electron donors from inhibiting myeloperoxidase, and ensure that this enzyme functions optimally at neutral pH.
机译:受刺激的嗜中性粒细胞释放出大量的超氧化物(O2-。),这些超氧化物歧化成H2O2。与Cl-结合,H2O2被血红素酶髓过氧化物酶转化为强氧化剂次氯酸(HOCl)。我们已经使用了H2O2电极来监测髓过氧化物酶对H2O2的吸收,并显示在存在Cl-的情况下,这准确地代表了HOCl的产生。通常用于测定HOCl生成量的一氯二甲酮可抑制H2O2吸收95%。该结果证实了一氯二甲酮抑制了髓过氧化物酶,并且一氯二甲酮测定法严重低估了髓过氧化物酶的活性。用10 microM-H2O2和100 mM-Cl-,髓过氧化物酶的中性pH最适。将H2O2浓度增加到100 microM会将最适pH降至pH 6.5。在最适pH之上,由于化合物II的积累,H2O2吸收突然爆发,并迅速下降。高浓度的H2O2抑制了髓过氧化物酶并促进了化合物II的形成。在较高的Cl-浓度下,H2O2的这些作用会降低。我们建议H2O2与Cl-竞争化合物I,并将其还原为化合物II,从而抑制髓过氧化物酶。 pH高于6.5时,黄嘌呤氧化酶和乙醛产生的O2.-阻止H2O2抑制髓过氧化物酶,从而增加了H2O2的初始吸收速率。 O2。使髓过氧化物酶与pH 7.0的100 microM-H2O2最佳结合。发生这种情况的原因是,如前所述,O2。-通过将化合物II还原为铁过氧化物铁而防止其积聚。相反,在pH 6.0下,化合物II没有积累,O 2-延迟了H 2 O 2的吸收。我们建议通过产生O2-中性粒细胞来防止H2O2和其他单电子供体抑制髓过氧化物酶,并确保该酶在中性pH下发挥最佳作用。

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