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用于生物催化合成阿哌沙班前体的酮还原酶的有效工程改造。

Effective engineering of a ketoreductase for the biocatalytic synthesis of an ipatasertib precursor.

作者信息

Honda Malca Sumire, Duss Nadine, Meierhofer Jasmin, Patsch David, Niklaus Michael, Reiter Stefanie, Hanlon Steven Paul, Wetzl Dennis, Kuhn Bernd, Iding Hans, Buller Rebecca

机构信息

Institute of Chemistry and Biotechnology, Zurich University of Applied Sciences, Einsiedlerstrasse 31, 8820 Wädenswil, Switzerland.

Analytical Research and Development, MSD Werthenstein BioPharma GmbH, Industrie Nord 1, 6105 Schachen, Switzerland.

出版信息

Commun Chem. 2024 Feb 28;7(1):46. doi: 10.1038/s42004-024-01130-5.

Abstract

Semi-rational enzyme engineering is a powerful method to develop industrial biocatalysts. Profiting from advances in molecular biology and bioinformatics, semi-rational approaches can effectively accelerate enzyme engineering campaigns. Here, we present the optimization of a ketoreductase from Sporidiobolus salmonicolor for the chemo-enzymatic synthesis of ipatasertib, a potent protein kinase B inhibitor. Harnessing the power of mutational scanning and structure-guided rational design, we created a 10-amino acid substituted variant exhibiting a 64-fold higher apparent k and improved robustness under process conditions compared to the wild-type enzyme. In addition, the benefit of algorithm-aided enzyme engineering was studied to derive correlations in protein sequence-function data, and it was found that the applied Gaussian processes allowed us to reduce enzyme library size. The final scalable and high performing biocatalytic process yielded the alcohol intermediate with ≥ 98% conversion and a diastereomeric excess of 99.7% (R,R-trans) from 100 g L ketone after 30 h. Modelling and kinetic studies shed light on the mechanistic factors governing the improved reaction outcome, with mutations T134V, A238K, M242W and Q245S exerting the most beneficial effect on reduction activity towards the target ketone.

摘要

半理性酶工程是开发工业生物催化剂的一种强大方法。受益于分子生物学和生物信息学的进展,半理性方法可以有效地加速酶工程研究。在此,我们展示了对来自鲑色掷孢酵母的一种酮还原酶进行优化,用于化学酶法合成强效蛋白激酶B抑制剂伊帕替尼。利用突变扫描和结构导向的理性设计的力量,我们创建了一个10个氨基酸被取代的变体,与野生型酶相比,该变体在反应条件下表现出高64倍的表观k,并且稳健性得到改善。此外,研究了算法辅助酶工程的益处,以推导蛋白质序列-功能数据中的相关性,发现应用的高斯过程使我们能够减小酶文库的大小。最终可扩展且高性能的生物催化过程在30小时后从100 g/L酮中产生了醇中间体,转化率≥98%,非对映体过量为99.7%(R,R-反式)。建模和动力学研究揭示了控制反应结果改善情况的机制因素,其中突变T134V、A238K、M242W和Q245S对目标酮的还原活性产生了最有益的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ef9a/10902378/2906587126f7/42004_2024_1130_Fig1_HTML.jpg

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