Engineering xylose fermentation in an industrial yeast: continuous cultivation as a tool for selecting improved strains

Author:

Basso Thalita P1,Procópio Dielle P2ORCID,Petrin Thais H C2,Giacon Thamiris G2ORCID,Jin Yong-Su34ORCID,Basso Thiago O2,Basso Luiz C5

Affiliation:

1. Department of Genetics, Escola Superior de Agricultura Luiz de Queiroz, Universidade de São Paulo , Piracicaba, SP 13418-900 , Brazil

2. Department of Chemical Engineering, Escola Politécnica, Universidade de São Paulo , São Paulo, SP 05508-010 , Brazil

3. DOE Center for Advanced Bioenergy and Bioproducts Innovation, University of Illinois at Urbana-Champaign , Urbana, IL 61801 , United States

4. Department of Food Science and Nutrition, University of Illinois at Urbana-Champaign , Urbana, IL 61801 , United States

5. Department of Biological Sciences, Escola Superior de Agricultura Luiz de Queiroz, Universidade de São Paulo , Piracicaba, SP 13418-900 , Brazil

Abstract

Abstract Production of second-generation ethanol from lignocellulosic residues should be fueling the energy matrix in the near future. Lignocellulosic biomass has received considerable attention as an alternative renewable resource toward reducing the demand for fossil energy sources, contributing to a future sustainable bio-based economy. Fermentation of lignocellulosic hydrolysates poses many scientific and technological challenges as the drawback of Saccharomyces cerevisiae’s inability in fermenting pentose sugars (derived from hemicellulose). To overcome the inability of S. cerevisiae to ferment xylose and increase yeast robustness in the presence of inhibitory compound-containing media, the industrial S. cerevisiae strain SA-1 was engineered using CRISPR-Cas9 with the oxidoreductive xylose pathway from Scheffersomyces stipitis (encoded by XYL1, XYL2, and XYL3). The engineered strain was then cultivated in a xylose-limited chemostat under increasing dilution rates (for 64 days) to improve its xylose consumption kinetics under aerobic conditions. The evolved strain (DPY06) and its parental strain (SA-1 XR/XDH) were evaluated under microaerobic in a hemicellulosic hydrolysate-based medium. DPY06 exhibited 35% higher volumetric ethanol productivity compared to its parental strain.

Funder

Fundação de Apoio à Pesquisa do Estado de São Paulo

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology

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