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通过蛋白质工程实现细胞色素P450单加氧酶中的芳香族羟基化。

Enabling Aromatic Hydroxylation in a Cytochrome P450 Monooxygenase Enzyme through Protein Engineering.

作者信息

Coleman Tom, Lee Joel Z H, Kirk Alicia M, Doherty Daniel Z, Podgorski Matthew N, Pinidiya Dilshi K, Bruning John B, De Voss James J, Krenske Elizabeth H, Bell Stephen G

机构信息

Department of Chemistry, University of Adelaide, Adelaide, SA, 5005, Australia.

School of Chemistry and Molecular Bioscience, University of Queensland, St Lucia, Qld, 4072, Australia.

出版信息

Chemistry. 2022 Dec 1;28(67):e202201895. doi: 10.1002/chem.202201895. Epub 2022 Oct 6.

Abstract

The cytochrome P450 (CYP) family of heme monooxygenases catalyse the selective oxidation of C-H bonds under ambient conditions. The CYP199A4 enzyme from Rhodopseudomonas palustris catalyses aliphatic oxidation of 4-cyclohexylbenzoic acid but not the aromatic oxidation of 4-phenylbenzoic acid, due to the distinct mechanisms of aliphatic and aromatic oxidation. The aromatic substrates 4-benzyl-, 4-phenoxy- and 4-benzoyl-benzoic acid and methoxy-substituted phenylbenzoic acids were assessed to see if they could achieve an orientation more amenable to aromatic oxidation. CYP199A4 could catalyse the efficient benzylic oxidation of 4-benzylbenzoic acid. The methoxy-substituted phenylbenzoic acids were oxidatively demethylated with low activity. However, no aromatic oxidation was observed with any of these substrates. Crystal structures of CYP199A4 with 4-(3'-methoxyphenyl)benzoic acid demonstrated that the substrate binding mode was like that of 4-phenylbenzoic acid. 4-Phenoxy- and 4-benzoyl-benzoic acid bound with the ether or ketone oxygen atom hydrogen-bonded to the heme aqua ligand. We also investigated whether the substitution of phenylalanine residues in the active site could permit aromatic hydroxylation. Mutagenesis of the F298 residue to a valine did not significantly alter the substrate binding position or enable the aromatic oxidation of 4-phenylbenzoic acid; however the F182L mutant was able to catalyse 4-phenylbenzoic acid oxidation generating 2'-hydroxy-, 3'-hydroxy- and 4'-hydroxy metabolites in a 83 : 9 : 8 ratio, respectively. Molecular dynamics simulations, in which the distance and angle of attack were considered, demonstrated that in the F182L variant, in contrast to the wild-type enzyme, the phenyl ring of 4-phenylbenzoic acid attained a productive geometry for aromatic oxidation to occur.

摘要

细胞色素P450(CYP)血红素单加氧酶家族在环境条件下催化C-H键的选择性氧化。来自沼泽红假单胞菌的CYP199A4酶催化4-环己基苯甲酸的脂肪族氧化,但不催化4-苯基苯甲酸的芳香族氧化,这是由于脂肪族和芳香族氧化的机制不同。评估了芳香族底物4-苄基苯甲酸、4-苯氧基苯甲酸、4-苯甲酰基苯甲酸和甲氧基取代的苯基苯甲酸,以确定它们是否能实现更有利于芳香族氧化的取向。CYP199A4可以催化4-苄基苯甲酸的高效苄基氧化。甲氧基取代的苯基苯甲酸发生氧化脱甲基反应,活性较低。然而,这些底物均未观察到芳香族氧化。CYP199A4与4-(3'-甲氧基苯基)苯甲酸的晶体结构表明,底物结合模式与4-苯基苯甲酸相似。4-苯氧基苯甲酸和4-苯甲酰基苯甲酸与醚或酮氧原子结合,该氧原子与血红素水配体形成氢键。我们还研究了活性位点中苯丙氨酸残基的取代是否能实现芳香族羟基化。将F298残基突变为缬氨酸并没有显著改变底物结合位置,也没有使4-苯基苯甲酸发生芳香族氧化;然而,F182L突变体能够催化4-苯基苯甲酸氧化,分别以83:9:8的比例生成2'-羟基、3'-羟基和4'-羟基代谢物。考虑到攻击距离和角度的分子动力学模拟表明,与野生型酶相比,在F182L变体中,4-苯基苯甲酸的苯环获得了发生芳香族氧化的有效几何结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/604e/10092897/7016933de291/CHEM-28-0-g006.jpg

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