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APPLICATION OF DIRECTED DIVERGENT EVOLUTION STRATEGY IN NATURAL PRODUCT BIOSYNTHESIS

机译:直接发散进化策略在天然产物生物合成中的应用

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Genetic diversity is a result of evolution, enabling multiple ways for one particular physiological activity. Here, we introduce this strategy into bioengineering. We design two hydroxytyrosol biosynthetic pathways using tyrosine as substrate. We show that the synthetic capacity is significantly improved when two pathways work simultaneously comparing to each individual pathway. Next, we engineer flavin-dependent monooxygenase HpaBC for tyrosol hydroxylase, tyramine hydroxylase, and promiscuous hydroxylase active on both tyrosol and tyramine using directed divergent evolution strategy. Then, the mutant HpaBCs are employed to catalyze two missing steps in the hydroxytyrosol biosynthetic pathways designed above. Our results demonstrate that the promiscuous tyrosol/tyramine hydroxylase can minimize the cell metabolic burden induced by protein overexpression and allow the biosynthetic carbon flow to be divided between two pathways. Thus, the efficiency of the hydroxytyrosol biosynthesis is significantly improved by rearranging the metabolic flux among multiple pathways.
机译:遗传多样性是进化的结果,为一种特定的生理活动提供了多种途径。在这里,我们将这种策略引入生物工程。我们设计了两个酪氨酸作为底物的羟基酪醇生物合成途径。我们显示,与每个单独的途径相比,当两个途径同时工作时,合成能力得到了显着提高。接下来,我们采用定向发散进化策略,设计出黄素依赖性单加氧酶HpaBC,用于酪醇羟化酶,酪胺羟化酶和对羟酪胺和酪胺都有活性的混杂羟化酶。然后,将突变的HpaBC用于催化以上设计的羟基酪醇生物合成途径中的两个缺失步骤。我们的结果表明,混杂的酪醇/酪胺羟化酶可以最大程度地减少蛋白质过度表达引起的细胞代谢负担,并使生物合成碳流在两种途径之间分配。因此,通过在多个途径之间重新布置代谢通量,显着提高了羟基酪醇生物合成的效率。

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