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利用细胞色素P450单加氧酶CYP101B1的变体氧化疏水性芳香族底物

The Oxidation of Hydrophobic Aromatic Substrates by Using a Variant of the P450 Monooxygenase CYP101B1.

作者信息

Sarkar Md Raihan, Lee Joel H Z, Bell Stephen G

机构信息

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

出版信息

Chembiochem. 2017 Nov 2;18(21):2119-2128. doi: 10.1002/cbic.201700316. Epub 2017 Oct 9.

DOI:10.1002/cbic.201700316
PMID:28868671
Abstract

The cytochrome P450 monooxygenase CYP101B1, from a Novosphingobium bacterium is able to bind and oxidise aromatic substrates but at a lower activity and efficiency than norisoprenoids and monoterpenoid esters. Histidine 85 of CYP101B1 aligns with tyrosine 96 of CYP101A1, which, in the latter enzyme forms the only hydrophilic interaction with its substrate, camphor. The histidine residue of CYP101B1 was mutated to phenylalanine with the aim of improving the activity of the enzyme for hydrophobic substrates. The H85F mutant lowered the binding affinity and activity of the enzyme for β-ionone and altered the oxidation selectivity. This variant also showed enhanced affinity and activity towards alkylbenzenes, styrenes and methylnaphthalenes. For example the rate of product formation for acenaphthene oxidation was improved sixfold to 245 nmol per nmol CYP per min. Certain disubstituted naphthalenes and substrates, such as phenylcyclohexane and biphenyls, were oxidised with lower activity by the H85F variant. Variants at H85 (A and G) designed to introduce additional space into the active site so as to accommodate these larger substrates did not improve the oxidation activity. As the H85F mutant of CYP101B1 improved the oxidation of hydrophobic substrates, this residue is likely to be in the substrate binding pocket or the access channel of the enzyme. The side chain of the histidine might interact with the carbonyl groups of the favoured norisoprenoid substrates of CYP101B1.

摘要

来自新鞘氨醇菌的细胞色素P450单加氧酶CYP101B1能够结合并氧化芳香族底物,但其活性和效率低于去甲类异戊二烯和单萜酯。CYP101B1的组氨酸85与CYP101A1的酪氨酸96对齐,在后者的酶中,酪氨酸96与其底物樟脑形成唯一的亲水相互作用。将CYP101B1的组氨酸残基突变为苯丙氨酸,目的是提高该酶对疏水底物的活性。H85F突变体降低了该酶对β-紫罗兰酮的结合亲和力和活性,并改变了氧化选择性。该变体对烷基苯、苯乙烯和甲基萘也表现出增强的亲和力和活性。例如,苊氧化的产物形成速率提高了六倍,达到每纳摩尔CYP每分钟245纳摩尔。某些二取代萘和底物,如苯基环己烷和联苯,被H85F变体氧化的活性较低。设计用于在活性位点引入额外空间以容纳这些较大底物的H85(A和G)变体并没有提高氧化活性。由于CYP101B1的H85F突变体改善了疏水底物的氧化,该残基可能位于酶的底物结合口袋或进入通道中。组氨酸的侧链可能与CYP101B1偏爱的去甲类异戊二烯底物的羰基相互作用。

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