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Stress-driven dynamic regulation of multiple tolerance genes improves robustness and productive capacity of Saccharomyces cerevisiae in industrial lignocellulose fermentation
- Source :
- Metabolic Engineering. 61:160-170
- Publication Year :
- 2020
- Publisher :
- Elsevier BV, 2020.
-
Abstract
- Yeast productivity in lignocellulosic ethanol fermentation is clearly impeded by stress. Enhancing the robustness of xylose-fermenting yeast is important for improving lignocellulosic ethanol production. In this study, the glutathione biosynthesis pathway and acetic acid degradation pathway were strengthened to enhance yeast tolerance to stress due to elevated reactive oxygen species (ROS) and acetic acid. Dynamic feedback regulation of the anti-stress genetic circuits was achieved using stress-driven promoters discovered from the transcriptome to maintain low intracellular ROS, relieve the metabolic burden, and ultimately improve the robustness and ethanol production of yeast. The cell growth, xylose utilization and ethanol production of the engineered strain were enhanced under both stress and nonstress conditions. The engineered strain showed 49.5% and 17.5% higher ethanol productivity in laboratory media and industrial lignocellulosic media, respectively, at 36 °C compared with the parent strain. This study provides novel insights on the rational design and construction of feedback genetic circuits for dynamically improving yeast robustness.
- Subjects :
- 0106 biological sciences
Saccharomyces cerevisiae
Bioengineering
Xylose
Lignin
01 natural sciences
Applied Microbiology and Biotechnology
03 medical and health sciences
chemistry.chemical_compound
010608 biotechnology
Ethanol fuel
030304 developmental biology
0303 health sciences
Ethanol
biology
Rational design
Robustness (evolution)
biology.organism_classification
Yeast
Metabolic Engineering
chemistry
Biochemistry
Fermentation
Biotechnology
Subjects
Details
- ISSN :
- 10967176
- Volume :
- 61
- Database :
- OpenAIRE
- Journal :
- Metabolic Engineering
- Accession number :
- edsair.doi.dedup.....ca7d1e73f738bd68db0e621f71fad072