Investigation of the Effects of Mutating Iron-Coordinating Residues in Rieske Dioxygenases

Fine focus Pub Date : 2024-05-13 DOI:10.33043/ff.10.1.90-108
Jordan Froese, Phillip Betts
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Abstract

Rieske dioxygenases are multi-component enzyme systems, naturally found in many soil bacteria, that have been widely applied in the production of fine chemicals, owing to the unique and valuable oxidative dearomatization reactions they catalyze. The range of practical applications for these enzymes in this context has historically been limited, however, due to their limited substrate scope and strict selectivity. In an attempt to overcome these limitations, our research group has employed the tools of enzyme engineering to expand the substrate scope or improve the reactivity of these enzyme systems in specific contexts. Traditionally, enzyme engineering campaigns targeting metalloenzymes have avoided mutations to metal-coordinating residues, based on the assumption that these residues are essential for enzyme activity. Inspired by the success of other recent enzyme engineering reports, our research group investigated the potential to alter or improve the reactivity of Rieske dioxygenases by altering or eliminating iron coordination in the active site of these enzymes. Herein, we report the modification of all three iron-coordinating residues in the active site of toluene dioxygenase both to alternate residues capable of coordinating iron, and to a residue that would eliminate iron coordination. The enzyme variants produced in this way were tested for their activity in the cis-dihydroxylation of a small library of potential aromatic substrates. The results of these studies demonstrated that all three iron-coordinating residues, in their natural state, are essential for enzyme activity in toluene dioxygenase, as the introduction of any mutations at these sites resulted in a complete loss of cis-dihydroxylation activity.
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研究雷斯克二氧化酶中铁配位位点突变的影响
Rieske 二氧酶是一种多组分酶系统,天然存在于许多土壤细菌中,由于其催化的独特而有价值的氧化脱芳烃反应,已被广泛应用于精细化学品的生产。然而,由于这些酶的底物范围有限且具有严格的选择性,它们在这方面的实际应用范围一直很有限。为了克服这些限制,我们的研究小组采用了酶工程工具,以扩大底物范围或提高这些酶系统在特定情况下的反应性。传统上,以金属酶为目标的酶工程研究一直避免对金属配位残基进行突变,因为这些残基是酶活性所必需的。受近期其他酶工程报告的成功启发,我们的研究小组研究了通过改变或消除 Rieske 二氧化酶活性位点中的铁配位来改变或提高这些酶反应性的潜力。在此,我们报告了将甲苯二氧合酶活性位点中的所有三个铁配位残基修改为能与铁配位的替代残基和能消除铁配位的残基的情况。我们测试了以这种方式产生的酶变体在少量潜在芳香底物顺式二羟基化过程中的活性。这些研究结果表明,在天然状态下,所有三个铁配位残基对于甲苯二氧合酶的酶活性都是必不可少的,因为在这些位点上引入任何突变都会导致顺式二羟基化活性的完全丧失。
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