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用于甲醇同化的工程酵母。

Engineering Yeast for Methanol Assimilation.

作者信息

Wang Guokun, Olofsson-Dolk Mattis, Hansson Frederik Gleerup, Donati Stefano, Li Xiaolin, Chang Hong, Cheng Jian, Dahlin Jonathan, Borodina Irina

机构信息

The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Kongens Lyngby 2800, Denmark.

Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin 300308, China.

出版信息

ACS Synth Biol. 2021 Dec 17;10(12):3537-3550. doi: 10.1021/acssynbio.1c00464. Epub 2021 Nov 19.

Abstract

Conferring methylotrophy on industrial microorganisms would enable the production of diverse products from one-carbon feedstocks and contribute to establishing a low-carbon society. Rebuilding methylotrophs, however, requires a thorough metabolic refactoring and is highly challenging. Only recently was synthetic methylotrophy achieved in model microorganisms─ and baker's yeast . Here, we have engineered industrially important yeast to assimilate methanol. Through rationally constructing a chimeric assimilation pathway, rewiring the native metabolism for improved precursor supply, and laboratory evolution, we improved the methanol assimilation from undetectable to a level of 1.1 g/L per 72 h and enabled methanol-supported cellular maintenance. By transcriptomic analysis, we further found that fine-tuning of methanol assimilation and ribulose monophosphate/xylulose monophosphate (RuMP/XuMP) regeneration and strengthening formate dehydrogenation and the serine pathway were beneficial for methanol assimilation. This work paves the way for creating synthetic methylotrophic yeast cell factories for low-carbon economy.

摘要

赋予工业微生物甲基营养能力将使利用一碳原料生产多种产品成为可能,并有助于建立低碳社会。然而,重建甲基营养型微生物需要彻底的代谢重构,极具挑战性。直到最近,才在模式微生物——酿酒酵母中实现了合成甲基营养。在此,我们对具有工业重要性的酵母进行了工程改造,使其能够同化甲醇。通过合理构建嵌合同化途径、重新调整天然代谢以改善前体供应以及实验室进化,我们将甲醇同化率从检测不到提高到每72小时1.1克/升的水平,并实现了甲醇支持的细胞维持。通过转录组分析,我们进一步发现,微调甲醇同化和磷酸核糖/磷酸木酮糖(RuMP/XuMP)再生,以及加强甲酸脱氢和丝氨酸途径,有利于甲醇同化。这项工作为创建用于低碳经济的合成甲基营养酵母细胞工厂铺平了道路。

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