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首页> 外文期刊>Biochemistry >Biochemical and Spectroscopic Characterization of the Non-Heme Fe(II)- and 2-Oxoglutarate-Dependent Ethylene-Forming Enzyme from Pseudomonas syringae pv. phaseolicola PK2
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Biochemical and Spectroscopic Characterization of the Non-Heme Fe(II)- and 2-Oxoglutarate-Dependent Ethylene-Forming Enzyme from Pseudomonas syringae pv. phaseolicola PK2

机译:丁香假单胞菌pv的非血红素铁(II)和2-氧戊二酸依赖性乙烯形成酶的生化和光谱表征。菜豆PK2

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The ethylene-forming enzyme (EFE) from Pseudomonas syringae pv. phaseolicola PK2 is a member of the mononuclear non-heme Fe(II)- and 2-oxoglutarate (2OG)-dependent oxygenase superfamily. This enzyme is reported to simultaneously catalyze the conversion of 2OG into ethylene and three CO2 molecules and the C delta hydroxylation of l-arginine (l-Arg) while oxidatively decarboxylating 2OG to form succinate and carbon dioxide. A new plasmid construct for expression in recombinant Escherichia coli cells allowed for the purification of large amounts of EFE with activity greater than that previously recorded. A variety of assays were used to quantify and confirm the identity of the proposed products, including the first experimental demonstration of l-Delta(1)-pyrroline-5-carboxylate and guanidine derived from 5-hydroxyarginine. Selected l-Arg derivatives could induce ethylene formation without undergoing hydroxylation, demonstrating that ethylene production and l-Arg hydroxylation activities are not linked. Similarly, EFE utilizes the alternative alpha-keto acid 2-oxoadipate as a cosubstrate (forming glutaric acid) during the hydroxylation of l-Arg, with this reaction unlinked from ethylene formation. Kinetic constants were determined for both ethylene formation and l-Arg hydroxylation reactions. Anaerobic UV-visible difference spectra were used to monitor the binding of Fe(II) and substrates to the enzyme. On the basis of our results and what is generally known about EFE and Fe(II)- and 2OG-dependent oxygenases, an updated model for the reaction mechanism is presented.
机译:丁香假单胞菌PV的乙烯形成酶(EFE)。 phaseolicola PK2是单核非血红素铁(II)和2-氧代戊二酸酯(2OG)依赖性加氧酶超家族的成员。据报道,该酶可同时催化2OG转化为乙烯和3个CO2分子,并催化L-精氨酸(I-Arg)的Cδ羟基化,同时将2OG氧化脱羧形成琥珀酸酯和二氧化碳。一种用于在重组大肠杆菌细胞中表达的新质粒构建体,可以纯化具有比以前记录的活性更高活性的大量EFE。多种检测方法用于量化和确认所提议产品的身份,包括l-Delta(1)-吡咯啉-5-羧酸盐和衍生自5-羟基精氨酸的胍的首次实验证明。所选的1-Arg衍生物可诱导乙烯形成而不经历羟基化,表明乙烯的产生和1-Arg羟基化活性没有联系。类似地,EFE在1-Arg的羟基化过程中利用替代的α-酮酸2-氧代己二酸酯作为共底物(形成戊二酸),该反应与乙烯的形成无关。测定乙烯形成和1-Arg羟基化反应的动力学常数。厌氧紫外可见光谱用于监测Fe(II)和底物与酶的结合。根据我们的研究结果以及对EFE和Fe(II)-和2OG依赖性加氧酶的普遍了解,提出了一种更新的反应机理模型。

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