An extra copy of the β-glucosidase gene improved the cellobiose fermentation capability of an engineered Saccharomyces cerevisiae strain

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作者
Hyo Jin Kim
Won-Heong Lee
Timothy Lee Turner
Suryang Kwak
Yong-Su Jin
机构
[1] University of Illinois at Urbana-Champaign,Institute for Genomic Biology
[2] University of Illinois at Urbana-Champaign,Department of Food Science and Human Nutrition
[3] Seoul National University,Graduate School of International Agricultural Technology
[4] Seoul National University,Institutes of Green Bio Science and Technology
[5] Chonnam National University,Bioenergy Science and Technology
[6] Northwestern University,Department of Microbiology
来源
3 Biotech | 2019年 / 9卷
关键词
Homologous recombination; Cellobiose fermentation; Genome-wide overexpression library; -;
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摘要
In a previously engineered Saccharomyces cerevisiae recombinant, the cellobiose fermentation rate was significantly lower than the glucose fermentation rate. Thus, we implemented a genome-wide perturbation library to find gene targets for improving the cellobiose fermentation capability of the yeast strain. Unexpectedly, we discovered a transformant that contained an additional β-glucosidase gene (gh1-1), possibly through homologous recombination between the plasmids. The additional β-glucosidase led to the fastest cellobiose fermentation activity among all the transformants evaluated, and the strain demonstrated significantly higher β-glucosidase activity than the control strain, especially during the initial exponential growth phase. The present work revealed the benefit of the extra gh1-1 copy for efficient cellobiose fermentation in the engineered S. cerevisiae strain.
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