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Kinetic characterisation of a dye decolourising peroxidase from Streptomyces lividans: New insight into the mechanism of anthraquinone dye decolourisation

机译:淡绿色链霉菌的染料脱色过氧化物酶的动力学表征:蒽醌染料脱色机理的新见解

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摘要

Dye decolourising peroxidases are the most recent family of haem peroxidases to be discovered. The oxidising potential of these enzymes is driven by the formation of ferryl intermediates that enables them to oxidise synthetic dye molecules that are widely used in the textile industry. We have investigated the catalytic cycle of a dye decolourising peroxidase (DtpA) from a biotechnologically important bacterium Streptomyces lividans. Using a combination of steady-state and stopped-flow kinetic investigations, we have determined the rate constants for all steps in the catalytic cycle with a range of substrate molecules. For most substrates, the value of k cat /K m measured by steady-state kinetics is equal to the slowest step in catalysis measured by stopped-flow spectroscopy, namely the decay of the ferryl Fe IV O species (compound II) to form the ferric species. With the anthraquinone-based dye, reactive blue 19 (RB19) unusual steady-state kinetic behaviour is observed, which we propose through kinetic modelling of the catalytic cycle is due to a disproportionation mechanism of the dye. At low RB19 concentrations, the rate of disproportionation is slower than that of the rate determining step in DtpA, whereas at higher concentrations of RB19 the rate of disproportionation is faster. This mechanism obviates the need to postulate secondary sites for substrate binding on the enzyme which has been previously proposed for other dye decolourising haem peroxidases.
机译:染料脱色过氧化物酶是最新发现的血红素过氧化物酶家族。这些酶的氧化潜力是由亚铁中间体的形成驱动的,这些中间体使它们能够氧化在纺织工业中广泛使用的合成染料分子。我们已经研究了生物技术上重要的细菌链霉菌青霉链霉菌的染料脱色过氧化物酶(DtpA)的催化循环。使用稳态和停止流动力学研究相结合,我们已经确定了一系列底物分子在催化循环中所有步骤的速率常数。对于大多数底物,通过稳态动力学测量的k cat / K m值等于通过停流光谱法测量的催化最慢步骤,即,Fe IV(O)(FeII)形成化合物的衰变。铁种类。使用基于蒽醌的染料,观察到反应性蓝19(RB19)异常的稳态动力学行为,我们通过催化循环的动力学模型提出,这是由于染料的歧化机理所致。在低RB19浓度下,歧化速率比DtpA中的速率确定步骤要慢,而在较高浓度的RB19下,歧化速率更快。该机制消除了对在酶上假定底物结合的二级位点的需要,该酶先前已提出用于其他染料脱色血红素过氧化物酶。

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