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Adaptive laboratory evolution enhances methanol tolerance and conversion in engineered Corynebacterium glutamicum

机译:自适应实验室演化提高了工程化棒状杆菌的甲醇耐受性和转化率

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Synthetic methylotrophy has recently been intensively studied to achieve methanol-based biomanufacturing of fuels and chemicals. However, attempts to engineer platform microorganisms to utilize methanol mainly focus on enzyme and pathway engineering. Herein, we enhanced methanol bioconversion of synthetic methylotrophs by improving cellular tolerance to methanol. A previously engineered methanol-dependent Corynebacterium glutamicum is subjected to adaptive laboratory evolution with elevated methanol content. Unexpectedly, the evolved strain not only tolerates higher concentrations of methanol but also shows improved growth and methanol utilization. Transcriptome analysis suggests increased methanol concentrations rebalance methylotrophic metabolism by down-regulating glycolysis and up-regulating amino acid biosynthesis, oxidative phosphorylation, ribosome biosynthesis, and parts of TCA cycle. Mutations in the O-acetyl-l-homoserine sulfhydrylase Cgl0653 catalyzing formation of l-methionine analog from methanol and methanol-induced membrane-bound transporter Cgl0833 are proven crucial for methanol tolerance. This study demonstrates the importance of tolerance engineering in developing superior synthetic methylotrophs. Wang et al. improve the methanol tolerance for the synthetic methylotroph, Corynebacterium glutamicum. They generate 3 new strains by directed evolution and use biochemical, transcriptomic, and genetic approaches to characterize the pathways underlying the enhanced methanol metabolism. Their findings are important for biomanufacturing purposes.
机译:最近已经集中研究了合成甲基脱硫,以实现基于甲醇的生物制造的燃料和化学品。然而,尝试使用甲醇的工程平台微生物主要关注酶和途径工程。在此,通过改善对甲醇的细胞耐受性来增强合成甲基植物的甲醇生物转化。先前工程化的甲醇依赖性棒状杆菌谷氨酰胺与升高的甲醇含量进行自适应实验室演进。出乎意料的是,进化的菌株不仅耐受较高浓度的甲醇,而且还显示出改善的生长和甲醇利用。转录组分析表明,通过降低糖酵解和上调氨基酸生物合成,氧化磷酸化,核糖体生物合成和部分TCA循环,增加甲醇浓度重新平衡甲基脱蛋白代谢。从甲醇耐受的情况下,O-乙酰-1-均巯基巯基巯基巯基-CL0653催化甲硫氨酸类似物的突变的突变被证明是甲醇耐受的至关重要。本研究表明了耐受工程在开发出卓越的合成甲基植物中的重要性。 Wang等人。改善合成甲基双发性,棒状杆菌的甲醇耐受性。它们通过定向演化产生3个新菌株,并使用生化,转录组和遗传方法来表征增强甲醇代谢的途径。他们的发现对于生物制造目的很重要。

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