Influence of genetic background of engineered xylose-fermenting industrial Saccharomyces cerevisiae strains for ethanol production from lignocellulosic hydrolysates

Author:

Lopes Daiane Dias1,Rosa Carlos Augusto2,Hector Ronald E3,Dien Bruce S3,Mertens Jeffrey A3,Ayub Marco Antônio Záchia1

Affiliation:

1. 0000 0001 2200 7498 grid.8532.c Biotechnology and Biochemical Engineering Laboratory (BiotecLab) Federal University of Rio Grande do Sul PO Box 15090 Av. Bento Gonçalves, 9500 91501-970 Porto Alegre RS Brazil

2. 0000 0001 2181 4888 grid.8430.f Biological Science Institute Federal University of Minas Gerais Belo Horizonte Brazil

3. 0000 0004 0404 0958 grid.463419.d Bioenergy Research Unit, National Center for Agricultural Utilization Research USDA-Agricultural Research Service Peoria IL USA

Abstract

Abstract An industrial ethanol-producing Saccharomyces cerevisiae strain with genes of fungal oxido-reductive pathway needed for xylose fermentation integrated into its genome (YRH1415) was used to obtain haploids and diploid isogenic strains. The isogenic strains were more effective in metabolizing xylose than YRH1415 strain and able to co-ferment glucose and xylose in the presence of high concentrations of inhibitors resulting from the hydrolysis of lignocellulosic biomass (switchgrass). The rate of xylose consumption did not appear to be affected by the ploidy of strains or the presence of two copies of the xylose fermentation genes but by heterozygosity of alleles for xylose metabolism in YRH1415. Furthermore, inhibitor tolerance was influenced by the heterozygous genome of the industrial strain, which also showed a marked influenced on tolerance to increasing concentrations of toxic compounds, such as furfural. In this work, selection of haploid derivatives was found to be a useful strategy to develop efficient xylose-fermenting industrial yeast strains.

Funder

CNPq

CAPES

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Biotechnology,Bioengineering

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