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Kinetic insights into the peroxygenase activity of cellulose-active lytic polysaccharide monooxygenases (LPMOs)

机译:纤维素活性裂解多糖单氧化酶(LPMOS)的过氧化碳酶活性的动力学见解

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Lytic polysaccharide monooxygenases (LPMOs) are widely distributed in Nature, where they catalyze the hydroxylation of glycosidic bonds in polysaccharides. Despite the importance of LPMOs in the global carbon cycle and in industrial biomass conversion, the catalytic properties of these monocopper enzymes remain enigmatic. Strikingly, there is a remarkable lack of kinetic data, likely due to a multitude of experimental challenges related to the insoluble nature of LPMO substrates, like cellulose and chitin, and to the occurrence of multiple side reactions. Here, we employed competition between well characterized reference enzymes and LPMOs for the H2O2 co-substrate to kinetically characterize LPMO-catalyzed cellulose oxidation. LPMOs of both bacterial and fungal origin showed high peroxygenase efficiencies, with kcat/KmH2O2 values in the order of 105–106?M?1 s?1. Besides providing crucial insight into the cellulolytic peroxygenase reaction, these results show that LPMOs belonging to multiple families and active on multiple substrates are true peroxygenases. Lytic polysaccharide monooxygenases (LPMOs) catalyze the hydroxylation of glycosidic bonds in polysaccharides, but the catalytic properties of these monocopper enzymes remain poorly characterized. Here authors employ competition between reference enzymes and LPMOs for the H2O2 co-substrate to kinetically characterize LPMO-catalyzed cellulose oxidation.
机译:Lytic多糖单氧基酶(LPMOS)在自然界中广泛分布,其中它们催化多糖中糖苷键的羟基化。尽管LPMOS在全球碳循环和工业生物质转化中的重要性,但这些单极管酶的催化性能仍然是神秘的。引人注目的是,由于与LPMO基材的不溶性性质,如纤维素和甲壳素,可能存在显着缺乏动力学数据,这可能是由于纤维素底物的不溶性性质。在此,我们在特征在于H 2 O 2的基础族基础上的参考酶和LPMO之间使用竞争,以动力学表征LPMO催化的纤维素氧化。细菌和真菌来源的LPMOS显示出高的过氧酶效率,kcat / kmh2o2值,约为105-106?m?1 s?1。除了为纤维素溶解过氧酶反应提供关键的洞察力之外,这些结果表明,属于多个家族并在多个底物上有活性的LPMO是真正的过氧基团。裂解多糖单氧化酶(LPMOS)催化多糖中糖苷键的羟基化,但这些单拷贝酶的催化性能仍然存在差。这里作者使用参考酶和LPMOS之间的竞争,使H 2 O 2的族基底为动力学表征LPMO催化的纤维素氧化。

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