Construction of an economical xylose-utilizing Saccharomyces cerevisiae and its ethanol fermentation

Author:

Li Fan123,Bai Wenxin1,Zhang Yuan13,Zhang Zijian1,Zhang Deguo34,Shen Naidong13,Yuan Jingwei23,Zhao Guomiao13,Wang Xiaoyan13ORCID

Affiliation:

1. Nutrition and Health Research Institute, COFCO Corporation , No. 4 Road, South District, Beiqijia Town, Changping District, Beijing 102209 , China

2. COFCO Biochemical and Bioenergy (Zhaodong) Co., Ltd. , No. 24, Zhaolan Road, Zhaodong City, Suihua, Heilongjiang 151100 , China

3. COFCO Corporation , COFCO Fortune Plaza, No.8, Chao Yang Men South St., Chao Yang District, Beijing 100020 , China

4. COFCO Biotechnology Co., Ltd. , No. 1, Zhongliang Avenue, Yuhui District, Bengbu, Anhui 233010 , China

Abstract

Abstract Traditional industrial Saccharomyces cerevisiae could not metabolize xylose due to the lack of a specific enzyme system for the reaction from xylose to xylulose. This study aims to metabolically remould industrial S. cerevisiae for the purpose of utilizing both glucose and xylose with high efficiency. Heterologous gene xylA from Piromyces and homologous genes related to xylose utilization were selected to construct expression cassettes and integrated into genome. The engineered strain was domesticated with industrial material under optimizing conditions subsequently to further improve xylose utilization rates. The resulting S. cerevisiae strain ABX0928-0630 exhibits a rapid growth rate and possesses near 100% xylose utilization efficiency to produce ethanol with industrial material. Pilot-scale fermentation indicated the predominant feature of ABX0928-0630 for industrial application, with ethanol yield of 0.48 g/g sugars after 48 hours and volumetric xylose consumption rate of 0.87 g/l/h during the first 24 hours. Transcriptome analysis during the modification and domestication process revealed a significant increase in the expression level of pathways associated with sugar metabolism and sugar sensing. Meanwhile, genes related to glycerol lipid metabolism exhibited a pattern of initial increase followed by a subsequent decrease, providing a valuable reference for the construction of efficient xylose-fermenting strains.

Funder

National Key Research and Development Program of China

Publisher

Oxford University Press (OUP)

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Engineering Xylose Isomerase for Industrial Applications;Catalysts;2024-09-05

2. Yeast as a cell factory for fermentative production of ethanol from xylose;Journal of the Taiwan Institute of Chemical Engineers;2024-06

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