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Enhancing cytochrome P450-mediated conversions in P. pastoris through RAD52 over-expression and optimizing the cultivation conditions

机译:通过过度表达RAD52增强巴斯德毕赤酵母中细胞色素P450介导的转化并优化培养条件

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Cytochrome P450 enzymes (CYPs) play an essential role in the biosynthesis of various natural compounds by catalyzing regio- and stereospecific hydroxylation reactions. Thus, CYP activities are of great interest in the production of fine chemicals, pharmaceutical compounds or flavors and fragrances. Industrial applicability of CYPs has driven extensive research efforts aimed at improving the performance of these enzymes to generate robust biocatalysts. Recently, our group has identified CYP-mediated hydroxylation of (+)-valencene as a major bottleneck in the biosynthesis of trans-nootkatol and (+)-nootkatone in Pichia pastoris. In the current study, we aimed at enhancing CYP-mediated (+)-valencene hydroxylation by over-expressing target genes identified through transcriptome analysis in P. pastoris. Strikingly, over-expression of the DNA repair and recombination gene RAD52 had a distinctly positive effect on trans-nootkatol formation. Combining RAD52 over-expression with optimization of whole-cell biotransformation conditions, i.e. optimized media composition and cultivation at higher pH value, enhanced trans-nootkatol production 5-fold compared to the initial strain and condition. These engineering approaches appear to be generally applicable for enhanced hydroxylation of hydrophobic compounds in P. pastoris as confirmed here for two additional membrane-attached CYPs, namely the limonene-3-hydroxylase from Mentha piperita and the human CYP2D6. (C) 2016 Elsevier Inc. All rights reserved.
机译:细胞色素P450酶(CYP)通过催化区域和立体特异性羟基化反应,在各种天然化合物的生物合成中发挥重要作用。因此,CYP活性在精细化学品,药物化合物或香料和香精的生产中引起了极大的兴趣。 CYPs的工业适用性推动了广泛的研究工作,旨在改善这些酶的性能以生成坚固的生物催化剂。最近,我们的研究小组确定CYP介导的(+)-瓦伦烯羟基化是巴斯德毕赤酵母中反式-Notokatol和(+)-Nootkatone生物合成的主要瓶颈。在当前的研究中,我们旨在通过过度表达通过转录组分析在巴斯德毕赤酵母中鉴定的目标基因来增强CYP介导的(+)-瓦伦烯羟基化。令人惊讶的是,DNA修复和重组基因RAD52的过表达对反式Notokatol的形成具有明显的积极作用。将RAD52过表达与优化的全细胞生物转化条件相结合,即优化的培养基组成和在更高的pH值下培养,与最初的菌株和条件相比,将反式Notokatol产量提高了5倍。这些工程方法似乎通常可用于增强巴斯德毕赤酵母中疏水性化合物的羟基化作用,如此处另外两个与膜附着的CYP所证实的,即来自薄荷醇的柠檬烯-3-羟化酶和人CYP2D6。 (C)2016 Elsevier Inc.保留所有权利。

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