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突变和底物结合对细胞色素P450BM3变体稳定性的影响。

Effect of Mutation and Substrate Binding on the Stability of Cytochrome P450BM3 Variants.

作者信息

Geronimo Inacrist, Denning Catherine A, Rogers W Eric, Othman Thaer, Huxford Tom, Heidary David K, Glazer Edith C, Payne Christina M

机构信息

Department of Chemical and Materials Engineering, University of Kentucky , Lexington, Kentucky 40506-0046, United States.

Department of Chemistry, University of Kentucky , Lexington, Kentucky 40506-0055, United States.

出版信息

Biochemistry. 2016 Jun 28;55(25):3594-606. doi: 10.1021/acs.biochem.6b00183. Epub 2016 Jun 16.

Abstract

Cytochrome P450BM3 is a heme-containing enzyme from Bacillus megaterium that exhibits high monooxygenase activity and has a self-sufficient electron transfer system in the full-length enzyme. Its potential synthetic applications drive protein engineering efforts to produce variants capable of oxidizing nonnative substrates such as pharmaceuticals and aromatic pollutants. However, promiscuous P450BM3 mutants often exhibit lower stability, thereby hindering their industrial application. This study demonstrated that the heme domain R47L/F87V/L188Q/E267V/F81I pentuple mutant (PM) is destabilized because of the disruption of hydrophobic contacts and salt bridge interactions. This was directly observed from crystal structures of PM in the presence and absence of ligands (palmitic acid and metyrapone). The instability of the tertiary structure and heme environment of substrate-free PM was confirmed by pulse proteolysis and circular dichroism, respectively. Binding of the inhibitor, metyrapone, significantly stabilized PM, but the presence of the native substrate, palmitic acid, had no effect. On the basis of high-temperature molecular dynamics simulations, the lid domain, β-sheet 1, and Cys ligand loop (a β-bulge segment connected to the heme) are the most labile regions and, thus, potential sites for stabilizing mutations. Possible approaches to stabilization include improvement of hydrophobic packing interactions in the lid domain and introduction of new salt bridges into β-sheet 1 and the heme region. An understanding of the molecular factors behind the loss of stability of P450BM3 variants therefore expedites site-directed mutagenesis studies aimed at developing thermostability.

摘要

细胞色素P450BM3是一种来自巨大芽孢杆菌的含血红素酶,在全长酶中表现出高单加氧酶活性且具有自给自足的电子传递系统。其潜在的合成应用推动了蛋白质工程研究,以生产能够氧化非天然底物(如药物和芳香污染物)的变体。然而,具有混杂活性的P450BM3突变体通常稳定性较低,从而阻碍了它们的工业应用。本研究表明,血红素结构域R47L/F87V/L188Q/E267V/F81I五重突变体(PM)由于疏水接触和盐桥相互作用的破坏而不稳定。这从有配体(棕榈酸和甲吡酮)和无配体情况下PM的晶体结构中直接观察到。分别通过脉冲蛋白水解和圆二色性证实了无底物PM的三级结构和血红素环境的不稳定性。抑制剂甲吡酮的结合显著稳定了PM,但天然底物棕榈酸的存在没有影响。基于高温分子动力学模拟,盖子结构域、β-折叠1和半胱氨酸配体环(连接到血红素的一个β-凸起片段)是最不稳定的区域,因此是稳定化突变的潜在位点。可能的稳定化方法包括改善盖子结构域中的疏水堆积相互作用以及在β-折叠1和血红素区域引入新的盐桥。因此,了解P450BM3变体稳定性丧失背后的分子因素可加快旨在提高热稳定性的定点诱变研究。

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