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Ser67Asp and His68Asp Substitutions in Candida parapsilosis Carbonyl Reductase Alter the Coenzyme Specificity and Enantioselectivity of Ketone Reduction▿ †

机译:副念珠菌羰基还原酶中的Ser67Asp和His68Asp取代改变酮还原的辅酶特异性和对映选择性▿†

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摘要

A short-chain carbonyl reductase (SCR) from Candida parapsilosis catalyzes an anti-Prelog reduction of 2-hydroxyacetophenone to (S)-1-phenyl-1,2-ethanediol (PED) and exhibits coenzyme specificity for NADPH over NADH. By using site-directed mutagenesis, the mutants were designed with different combinations of Ser67Asp, His68Asp, and Pro69Asp substitutions inside or adjacent to the coenzyme binding pocket. All mutations caused a significant shift of enantioselectivity toward the (R)-configuration during 2-hydroxyacetophenone reduction. The S67D/H68D mutant produced (R)-PED with high optical purity and yield in the NADH-linked reaction. By kinetic analysis, the S67D/H68D mutant resulted in a nearly 10-fold increase and a 20-fold decrease in the kcat/Km value when NADH and NADPH were used as the cofactors, respectively, but maintaining a kcat value essentially the same with respect to wild-type SCR. The ratio of Kd (dissociation constant) values between NADH and NADPH for the S67D/H68D mutant and SCR were 0.28 and 1.9 respectively, which indicates that the S67D/H68D mutant has a stronger preference for NADH and weaker binding for NADPH. Moreover, the S67D/H68D enzyme exhibited a secondary structure and melting temperature similar to the wild-type form. It was also found that NADH provided maximal protection against thermal and urea denaturation for S67D/H68D, in contrast to the effective protection by NADP(H) for the wild-type enzyme. Thus, the double point mutation S67D/H68D successfully converted the coenzyme specificity of SCR from NADP(H) to NAD(H) as well as the product enantioselectivity without disturbing enzyme stability. This work provides a protein engineering approach to modify the coenzyme specificity and enantioselectivity of ketone reduction for short-chain reductases.
机译:来自假丝酵母的短链羰基还原酶(SCR)催化2-羟基苯乙酮对(S)-1-苯基-1,2-乙二醇(PED)的抗Prelog还原反应,并且相对于NADH表现出对NADPH的辅酶特异性。通过使用定点诱变,突变体被设计为在辅酶结合口袋内部或附近具有Ser67Asp,His68Asp和Pro69Asp取代的不同组合。在2-羟基苯乙酮还原过程中,所有突变均导致对映选择性向(R)-构型的明显转移。 S67D / H68D突变体在NADH连接的反应中以高光学纯度和高收率生产(R)-PED。通过动力学分析,当NADH和NADPH分别用作辅因子时,S67D / H68D突变体的kcat / Km值增加了近10倍,而kcat / Km值却减少了20倍,但保持的kcat值与相对于野生型SCR。对于S67D / H68D突变体和SCR,NADH和NADPH之间的Kd(解离常数)之比分别为0.28和1.9,这表明S67D / H68D突变体对NADH的偏爱性更高,对NADPH的结合力较弱。此外,S67D / H68D酶具有类似于野生型的二级结构和融解温度。还发现,与NADP(H)对野生型酶的有效保护相反,NADH为S67D / H68D提供了针对热和尿素变性的最大保护。因此,双点突变S67D / H68D成功地将SCR的辅酶特异性从NADP(H)转换为NAD(H),以及产物对映选择性,而又不影响酶的稳定性。这项工作提供了一种蛋白质工程方法,可以针对短链还原酶修饰酮还原的辅酶特异性和对映选择性。

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