Engineering Komagataella phaffii for ethylene glycol production from xylose.

IF 3.5 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY AMB Express Pub Date : 2024-11-30 DOI:10.1186/s13568-024-01795-0
Clara Vida G C Carneiro, Débora Trichez, Jessica C Bergmann, Viviane Castelo Branco Reis, Nils Wagner, Thomas Walther, João Ricardo Moreira de Almeida
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Abstract

Ethylene glycol (EG) is a versatile molecule produced in the petrochemical industry and is widely used to manufacture plastic polymers, anti-freeze, and automotive fluids. Biotechnological production of EG from xylose, a pentose present in lignocellulose biomass hydrolysates, has been achieved by the engineering of bacteria, such as Escherichia coli and Enterobacter cloacae, and the yeast Saccharomyces cerevisiae with synthetic pathways. In the present work, the Dahms pathway was employed to construct Komagataella phaffii strains capable of producing EG from xylose. Different combinations of the four enzymes that compose the synthetic pathway, namely, xylose dehydrogenase, xylonate dehydratase, dehydro-deoxy-xylonate aldolase, and glycolaldehyde reductase, were successfully expressed in K. phaffii. Increased production of EG (1.31 g/L) was achieved by employing a newly identified xylonate dehydratase (xylD-HL). This xylonate dehydratase allowed 30% higher EG production than a previously known xylonate dehydratase (xylD-CC). Further strain engineering demonstrated that K. phaffii possesses native glycolaldehyde reduction and oxidation activities, which lead to pathway deviation from EG to glycolic acid (GA) production. Finally, cultivation conditions that favor the production of EG over GA were determined.

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以木糖为原料生产乙二醇的工程研究。
乙二醇(EG)是石油化工行业生产的一种多用途分子,广泛用于制造塑料聚合物、防冻剂和汽车润滑油。木糖是一种存在于木质纤维素生物质水解物中的戊糖,通过对大肠杆菌、阴沟肠杆菌和酵母等细菌进行工程改造,利用合成途径从木糖中生产EG已经实现。本研究利用Dahms途径构建了能从木糖中产生EG的法菲Komagataella phaffii菌株。组成合成途径的四种酶,即木糖脱氢酶、木酸脱氢酶、脱氢脱氧木酸醛缩酶和乙醇醛还原酶的不同组合在K. phaffii中成功表达。采用新鉴定的木酸酯脱水酶(xylD-HL)可提高EG的产量(1.31 g/L)。这种木酸酯脱水酶的EG产量比以前已知的木酸酯脱水酶(xylD-CC)高30%。进一步的菌株工程表明,菲氏K. phaffii具有天然的乙醇醛还原和氧化活性,这导致了从EG到乙醇酸(GA)生产途径的偏离。最后,确定了有利于赤霉素生产的栽培条件。
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来源期刊
AMB Express
AMB Express BIOTECHNOLOGY & APPLIED MICROBIOLOGY-
CiteScore
7.20
自引率
2.70%
发文量
141
审稿时长
13 weeks
期刊介绍: AMB Express is a high quality journal that brings together research in the area of Applied and Industrial Microbiology with a particular interest in ''White Biotechnology'' and ''Red Biotechnology''. The emphasis is on processes employing microorganisms, eukaryotic cell cultures or enzymes for the biosynthesis, transformation and degradation of compounds. This includes fine and bulk chemicals, polymeric compounds and enzymes or other proteins. Downstream processes are also considered. Integrated processes combining biochemical and chemical processes are also published.
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