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酶工程提高了用于混杂逆硝基羟醛缩合酶活性的羟基腈裂解酶的催化效率和对映选择性。

Enzyme engineering improves catalytic efficiency and enantioselectivity of hydroxynitrile lyase for promiscuous retro-nitroaldolase activity.

作者信息

Vishnu Priya Badipatla, Sreenivasa Rao D H, Gilani Rubina, Lata Surabhi, Rai Nivedita, Akif Mohd, Kumar Padhi Santosh

机构信息

Biocatalysis and Enzyme Engineering Laboratory, Department of Biochemistry, School of Life Sciences, University of Hyderabad, Hyderabad 500 046, India.

Laboratory of Structural Biology, Department of Biochemistry, School of Life Sciences, University of Hyderabad, Hyderabad 500 046, India.

出版信息

Bioorg Chem. 2022 Mar;120:105594. doi: 10.1016/j.bioorg.2021.105594. Epub 2022 Jan 4.

Abstract

Protein engineering to improve promiscuous catalytic activity is important for biocatalytic application of enzymes in green synthesis. We uncovered the significance of binding site residues in Arabidopsis thaliana hydroxynitrile lyase (AtHNL) for promiscuous retro-nitroaldolase activity. Engineering of AtHNL has improved enantioselective retro-nitroaldolase activity, a synthetically important biotransformation, for the production of enantiopure β-nitroalcohols having absolute configuration opposite to that of the stereopreference of the HNL. The variant F179A has shown ∼ 12 fold increased selectivity towards the retro-nitroaldol reaction over cyanogenesis, the natural activity of the parent enzyme. Screening of the two saturation libraries of Phe179 and Tyr14 revealed several variants with higher k, while F179N showed ∼ 2.4-fold k/K than the native enzyme towards retro-nitroaldol reaction. Variants F179N, F179M, F179W, F179V, F179I, Y14L, and Y14M have shown > 99% ee in the preparation of (S)-2-nitro-1-phenylethanol (NPE) from the racemic substrate, while F179N has shown the E value of 138 vs. 81 by the wild type. Our molecular docking and dynamics simulations (MDS) studies results provided insights into the molecular basis of higher enantioselectivity by the F179N toward the retro-nitroaldolase activity than the other mutants. Binding energy calculations also showed the higher negative binding free energy in the case of F179N-(R)-NPE compared to other complexes that support our experimental low K by the F179N for NPE. A plausible retro-nitroaldol reaction mechanism was proposed based on the MDS study of enzyme-substrate interaction.

摘要

蛋白质工程用于提高混杂催化活性对于酶在绿色合成中的生物催化应用至关重要。我们揭示了拟南芥羟基腈裂解酶(AtHNL)中结合位点残基对于混杂的逆硝基醛缩酶活性的重要性。AtHNL的工程改造提高了对映选择性逆硝基醛缩酶活性,这是一种具有重要合成意义的生物转化,用于生产绝对构型与HNL立体偏好相反的对映体纯β-硝基醇。变体F179A对逆硝基醛缩反应的选择性比亲本酶的天然活性氰化反应提高了约12倍。对苯丙氨酸179和酪氨酸14的两个饱和文库进行筛选,发现了几个具有更高k值的变体,而F179N对逆硝基醛缩反应的k/K值比天然酶高约2.4倍。变体F179N、F179M、F179W、F179V、F179I、Y14L和Y14M从外消旋底物制备(S)-2-硝基-1-苯乙醇(NPE)时的对映体过量率>99%,而F179N的E值为138,野生型为81。我们的分子对接和动力学模拟(MDS)研究结果为F179N相对于其他突变体对逆硝基醛缩酶活性具有更高对映选择性的分子基础提供了见解。结合能计算还表明,与其他复合物相比,F179N-(R)-NPE的结合自由能更负,这支持了我们实验中F179N对NPE的低K值。基于酶-底物相互作用的MDS研究,提出了一个合理的逆硝基醛缩反应机制。

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