• Title of article

    Energetic benefits and rapid cellobiose fermentation by Saccharomyces cerevisiae expressing cellobiose phosphorylase and mutant cellodextrin transporters

  • Author/Authors

    Ha، نويسنده , , Suk-Jin and Galazka، نويسنده , , Jonathan M. and Joong Oh، نويسنده , , Eun and Kordi?، نويسنده , , Vesna and Kim، نويسنده , , Heejin and Jin، نويسنده , , Yong-Su and Cate، نويسنده , , Jamie H.D. Cate، نويسنده ,

  • Issue Information
    دوماهنامه با شماره پیاپی سال 2013
  • Pages
    10
  • From page
    134
  • To page
    143
  • Abstract
    Anaerobic bacteria assimilate cellodextrins from plant biomass by using a phosphorolytic pathway to generate glucose intermediates for growth. The yeast Saccharomyces cerevisiae can also be engineered to ferment cellobiose to ethanol using a cellodextrin transporter and a phosphorolytic pathway. However, strains with an intracellular cellobiose phosphorylase initially fermented cellobiose slowly relative to a strain employing an intracellular β-glucosidase. Fermentations by the phosphorolytic strains were greatly improved by using cellodextrin transporters with elevated rates of cellobiose transport. Furthermore under stress conditions, these phosphorolytic strains had higher biomass and ethanol yields compared to hydrolytic strains. These observations suggest that, although cellobiose phosphorolysis has energetic advantages, phosphorolytic strains are limited by the thermodynamics of cellobiose phosphorolysis (ΔG°=+3.6 kJ mol−1). A thermodynamic “push” from the reaction immediately upstream (transport) is therefore likely to be necessary to achieve high fermentation rates and energetic benefits of phosphorolysis pathways in engineered S. cerevisiae.
  • Keywords
    Cellobiose , phosphorylase , ?-glucosidase , Thermodynamics , Cellodextrin transporter
  • Journal title
    Metabolic Engineering
  • Serial Year
    2013
  • Journal title
    Metabolic Engineering
  • Record number

    1429480