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首页> 外文期刊>Beilstein journal of organic chemistry. >Engineering Pichia pastoris for improved NADH regeneration: A novel chassis strain for whole-cell catalysis
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Engineering Pichia pastoris for improved NADH regeneration: A novel chassis strain for whole-cell catalysis

机译:工程毕赤酵母可改善NADH的再生能力:一种用于全细胞催化的新型底盘菌株

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摘要

Many synthetically useful reactions are catalyzed by cofactor-dependent enzymes. As cofactors represent a major cost factor, methods for efficient cofactor regeneration are required especially for large-scale synthetic applications. In order to generate a novel and efficient host chassis for bioreductions, we engineered the methanol utilization pathway of Pichia pastoris for improved NADH regeneration. By deleting the genes coding for dihydroxyacetone synthase isoform 1 and 2 (DAS1 and DAS2), NADH regeneration via methanol oxidation (dissimilation) was increased significantly. The resulting Δdas1 Δdas2 strain performed better in butanediol dehydrogenase (BDH1) based whole-cell conversions. While the BDH1 catalyzed acetoin reduction stopped after 2 h reaching ~50% substrate conversion when performed in the wild type strain, full conversion after 6 h was obtained by employing the knock-out strain. These results suggest that the P. pastoris Δdas1 Δdas2 strain is capable of supplying the actual biocatalyst with the cofactor over a longer reaction period without the over-expression of an additional cofactor regeneration system. Thus, focusing the intrinsic carbon flux of this methylotrophic yeast on methanol oxidation to CO2 represents an efficient and easy-to-use strategy for NADH-dependent whole-cell conversions. At the same time methanol serves as co-solvent, inductor for catalyst and cofactor regeneration pathway expression and source of energy.
机译:辅因子依赖性酶催化许多合成上有用的反应。由于辅助因子代表主要的成本因素,因此需要有效辅助因子再生的方法,特别是对于大规模合成应用。为了产生用于生物还原的新颖和有效的宿主底盘,我们设计了巴斯德毕赤酵母的甲醇利用途径,以改善NADH的再生。通过删除编码二羟基丙酮合酶同工型1和2(DAS1和DAS2)的基因,通过甲醇氧化(异化)的NADH再生显着增加。在基于丁二醇脱氢酶(BDH1)的全细胞转化中,所得的Δdas1Δdas2菌株表现更好。当在野生型菌株中进行BDH1催化的乙酰辅酶还原反应在2小时后停止,达到约50%的底物转化率时,通过使用敲除菌株在6 h后获得了完全转化。这些结果表明,巴斯德毕赤酵母Δdas1Δdas2菌株能够在更长的反应时间内向实际的生物催化剂提供辅因子,而不会过度表达额外的辅因子再生系统。因此,将这种甲基营养型酵母的内在碳通量集中在甲醇氧化成CO2上,代表了NADH依赖性全细胞转化的有效且易于使用的策略。同时甲醇用作助溶剂,催化剂和辅因子再生途径表达和能量来源的诱导剂。

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