4.7 Article

Alleviation of catabolite repression in Kluyveromyces marxianus: the thermotolerant SBK1 mutant simultaneously coferments glucose and xylose

Journal

BIOTECHNOLOGY FOR BIOFUELS
Volume 12, Issue -, Pages -

Publisher

BMC
DOI: 10.1186/s13068-019-1431-x

Keywords

Simultaneous cofermentation; Cellulosic biomass; Thermotolerant yeast; Kluyveromyces marxianus SBK1

Funding

  1. Basic Science Research Program through the National Research Foundation of Korea (NRF) - Ministry of Education [2018R1A6A1A03025582]

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BackgroundSimultaneous cofermentation of glucose and xylose mixtures would be a cost-effective solution for the conversion of cellulosic biomass to high-value products. However, most yeasts ferment glucose and xylose sequentially due to glucose catabolite repression. A well known thermotolerant yeast, Kluyveromyces marxianus, was selected for this work because it possesses cost-effective advantages over Saccharomyces cerevisiae for biofuel production from cellulosic biomass.ResultsIn the present study, we employed a directed evolutionary approach using 2-deoxyglucose to develop a thermotolerant mutant capable of simultaneous cofermentation of glucose and xylose by alleviating catabolite repression. The selected mutant, K. marxianus SBK1, simultaneously cofermented 40g/L glucose and 28g/L xylose to produce 23.82g/L ethanol at 40 degrees C. This outcome corresponded to a yield of 0.35g/g and productivity of 0.33g/Lh, representing an 84% and 129% improvement, respectively, over the parental strain. Interestingly, following mutagenesis the overall transcriptome of the glycolysis pathway was highly downregulated in K. marxianus SBK1, except for glucokinase-1 (GLK1) which was 21-fold upregulated. Amino acid sequence of GLK1 from K. marxianus SBK1 revealed three amino acid mutations which led to more than 22-fold lower enzymatic activity compared to the parental strain.ConclusionsWe herein successfully demonstrated that the cofermentation of a sugar mixture is a promising strategy for the efficient utilization of cellulosic biomass by K. marxianus SBK1. Through introduction of additional biosynthetic pathways, K.marxianus SBK1 could become a chassis-type strain for the production of fuels and chemicals from cellulosic biomass.

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