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Improvement of the soy formate dehydrogenase properties by rational design

机译:通过合理设计改善大豆甲酸酯脱氢酶的性能

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Previous experiments on substitution of the residue Phe290 to Asp, Asn and Ser in NAD(+)-dependent formate dehydrogenase from soya Glycine max (SoyFDH) showed important role of the residue in enzyme thermal stability and catalytic properties (Alekseeva et al. Prot. Eng. Des. Sel., 2012a;25:781-88). In this work, we continued site-directed mutagenesis experiments of the Phe290 and the residue was changed to Ala, Thr, Tyr, Glu and Gln. All amino acid changes resulted in increase of catalytic constant from 2.9 to 3.5-4.7 s(-1). The substitution Phe290Ala led to K-M(NAD+) decrease from 13.3 to 8.6 mu M, and substitutions Phe290Tyr and Phe290Glu resulted in decrease and increase of K-M(HCOO-) from 1.5 to 0.9 and -2.9 mM, respectively. The highest improvement of catalytic properties was observed for SoyFDH Phe290Ala which showed 2-fold higher catalytic efficiency with both substrates. Stability of mutants was examined by study of thermal inactivation kinetics and differential scanning calorimetry (DSC). All five amino acids provided increase of thermal stability of mutant SoyFDH in comparison with wild-type enzyme. Mutant SoyFDH Phe290Glu showed the highest improvement-the stabilization effect was 43 at 56 degrees C. The DSC data agree with results of thermal inactivation kinetics. Substitutions Phe290Tyr, Phe290Thr, Phe290Gln and Phe290Glu provided T-m value increase 0.6 degrees-6.6 degrees. SoyFDH Phe290Glu and previously prepared SoyFDH Phe290Asp show similar thermal stability as enzymes from Candida boidinii and Mycobacterium vaccae N10 and have higher catalytic efficiency with NAD+ compared with all described FDHs. Therefore, these mutants are very perspective enzymes for coenzyme regeneration in processes of chiral synthesis with dehydrogenases.
机译:在大豆Glycine max(SoyFDH)的NAD(+)依赖性甲酸脱氢酶中,将残基Phe290替换为Asp,Asn和Ser的先前实验表明,该残基在酶的热稳定性和催化性能方面起着重要作用(Alekseeva等,Prot。 Ens.Des.Sel。,2012a; 25:781-88)。在这项工作中,我们继续对Phe290进行定点诱变实验,并将残基更改为Ala,Thr,Tyr,Glu和Gln。所有氨基酸的变化导致催化常数从2.9增加到3.5-4.7 s(-1)。取代Phe290Ala导致K-M(NAD +)从13.3μM减少到8.6μM,取代Phe290Tyr和Phe290Glu导致K-M(HCOO-)分别从1.5降低到0.9和-2.9 mM。观察到SoyFDH Phe290Ala的催化性能最高改善,对两种底物均显示出高出2倍的催化效率。通过研究热灭活动力学和差示扫描量热法(DSC)来检查突变体的稳定性。与野生型酶相比,所有五个氨基酸均增加了突变型SoyFDH的热稳定性。突变体SoyFDH Phe290Glu显示出最高的改进-稳定效应在56摄氏度下为43。DSC数据与热灭活动力学结果吻合。如果T-m值增加0.6度至6.6度,则替换Phe290Tyr,Phe290Thr,Phe290Gln和Phe290Glu。与所有上述FDH相比,SoyFDH Phe290Glu和先前制备的SoyFDH Phe290Asp显示出与来自博登假丝酵母和牛分枝杆菌N10的酶相似的热稳定性,并且对NAD +的催化效率更高。因此,这些突变体是具有脱氢酶的手性合成过程中用于辅酶再生的非常有前景的酶。

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