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来自沼泽红假单胞菌HaA2的CYP199A4对苯甲酸羧酸盐部分在底物识别中的重要性。

The importance of the benzoic acid carboxylate moiety for substrate recognition by CYP199A4 from Rhodopseudomonas palustris HaA2.

作者信息

Coleman Tom, Chao Rebecca R, De Voss James J, Bell Stephen G

机构信息

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

School of Chemistry and Molecular Biosciences, University of Queensland, Brisbane, Qld 4072, Australia.

出版信息

Biochim Biophys Acta. 2016 Jun;1864(6):667-675. doi: 10.1016/j.bbapap.2016.03.006. Epub 2016 Mar 10.

Abstract

BACKGROUND

The cytochrome P450 enzyme CYP199A4 can efficiently demethylate 4-methoxybenzoic acid. The substrate is positioned in the enzyme active site with the methoxy group ideally positioned for demethylation. This occurs through interactions of hydrophobic benzene ring with aromatic phenylalanine residues and the charged carboxylate group with polar and basic amino acids.

METHODS

In vitro substrate binding and kinetic turnover assays coupled with HPLC and GC-MS analysis and whole-cell oxidation turnovers.

RESULTS

Modification of the carboxylate group to an amide or aldehyde resulted in substrate binding, as judged by the almost total shift of the spin state to the high-spin form, but binding was three orders of magnitude weaker. Changing the carboxylate to phenol alcohol, ketone, ester and nitro groups and boronic, sulfinic and sulfonic acids resulted in a dramatic reduction in the binding affinity. Even phenylacetic acids were mediocre substrates for CYP199A4, despite maintaining a carboxylate group. The weaker binding of all of these substrates results in lower levels of turnover activity and product formation compared to 4-methoxybenzoic acid.

CONCLUSION

Substrate binding to CYP199A4 is tightly regulated by interactions between the 4-methoxybenzoic acid and the amino acids in the active site. The benzoic acid carboxylate moiety is critical for optimal substrate binding and turnover activity with CYP199A4.

GENERAL SIGNIFICANCE

An understanding of how the CYP199A4 enzyme has evolved to be highly selective for para-substituted benzoic acids. This provides valuable insight into how other, as yet structurally uncharacterised, monooxygenase enzymes may bind benzoic acid substrates.

摘要

背景

细胞色素P450酶CYP199A4能够高效地使4-甲氧基苯甲酸脱甲基。底物位于酶的活性位点,甲氧基处于理想的脱甲基位置。这一过程通过疏水性苯环与芳香族苯丙氨酸残基以及带电荷的羧基与极性和碱性氨基酸之间的相互作用而发生。

方法

采用体外底物结合和动力学周转测定,结合高效液相色谱和气相色谱-质谱分析以及全细胞氧化周转。

结果

将羧基修饰为酰胺或醛会导致底物结合,这可通过自旋态几乎完全转变为高自旋形式来判断,但结合力弱了三个数量级。将羧基变为酚醇、酮、酯、硝基以及硼酸、亚磺酸和磺酸会导致结合亲和力显著降低。即使苯乙酸,尽管保留了羧基,对于CYP199A4来说也是中等底物。与4-甲氧基苯甲酸相比,所有这些底物较弱的结合导致较低水平的周转活性和产物形成。

结论

底物与CYP199A4的结合受到4-甲氧基苯甲酸与活性位点氨基酸之间相互作用的严格调控。苯甲酸羧基部分对于与CYP199A4的最佳底物结合和周转活性至关重要。

普遍意义

了解CYP199A4酶如何进化为对对位取代苯甲酸具有高度选择性。这为其他尚未进行结构表征的单加氧酶如何结合苯甲酸底物提供了有价值的见解。

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