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Engineering the Substrate Specificity of a Thermophilic Penicillin Acylase from Thermus thermophilus

机译:工程嗜热菌嗜热青霉素酰化酶的底物特异性

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A homologue of the Escherichia coli penicillin acylase is encoded in the genomes of several thermophiles, including in different Thermus thermophilus strains. Although the natural substrate of this enzyme is not known, this acylase shows a marked preference for penicillin K over penicillin G. Three-dimensional models were created in which the catalytic residues and the substrate binding pocket were identified. Through rational redesign, residues were replaced to mimic the aromatic binding site of the E. coli penicillin G acylase. A set of enzyme variants containing between one and four amino acid replacements was generated, with altered catalytic properties in the hydrolyses of penicillins K and G. The introduction of a single phenylalanine residue in position α188, α189, or β24 improved the K_(m) for penicillin G between 9- and 12-fold, and the catalytic efficiency of these variants for penicillin G was improved up to 6.6-fold. Structural models, as well as docking analyses, can predict the positioning of penicillins G and K for catalysis and can demonstrate how binding in a productive pose is compromised when more than one bulky phenylalanine residue is introduced into the active site.
机译:大肠杆菌嗜青霉素酰基转移酶的同系物在几种嗜热菌的基因组中编码,包括在不同的嗜热栖热菌中。尽管该酶的天然底物未知,但与青霉素G相比,这种酰基转移酶显示出对青霉素K的明显偏爱。创建了三维模型,在其中识别了催化残基和底物结合口袋。通过合理的重新设计,残基被替换以模仿大肠杆菌青霉素G酰基转移酶的芳香结合位点。产生了一组包含一个至四个氨基酸置换的酶变体,在青霉素K和G的水解中具有改变的催化性能。在α188,α189或β24位置引入单个苯丙氨酸残基可改善K_(m)对于青霉素G,其对青霉素G的催化效率在9倍至12倍之间,并且这些变体对青霉素G的催化效率提高至6.6倍。结构模型以及对接分析可以预测用于催化的青霉素G和K的位置,并可以证明当将一个以上的大体积苯丙氨酸残基引入活性位点时,如何损害生产姿势的结合。

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