Flocculation causes inhibitor tolerance in Saccharomyces cerevisiae for second-generation bioethanol production

Appl Environ Microbiol. 2014 Nov;80(22):6908-18. doi: 10.1128/AEM.01906-14. Epub 2014 Aug 29.

Abstract

Yeast has long been considered the microorganism of choice for second-generation bioethanol production due to its fermentative capacity and ethanol tolerance. However, tolerance toward inhibitors derived from lignocellulosic materials is still an issue. Flocculating yeast strains often perform relatively well in inhibitory media, but inhibitor tolerance has never been clearly linked to the actual flocculation ability per se. In this study, variants of the flocculation gene FLO1 were transformed into the genome of the nonflocculating laboratory yeast strain Saccharomyces cerevisiae CEN.PK 113-7D. Three mutants with distinct differences in flocculation properties were isolated and characterized. The degree of flocculation and hydrophobicity of the cells were correlated to the length of the gene variant. The effect of different strength of flocculation on the fermentation performance of the strains was studied in defined medium with or without fermentation inhibitors, as well as in media based on dilute acid spruce hydrolysate. Strong flocculation aided against the readily convertible inhibitor furfural but not against less convertible inhibitors such as carboxylic acids. During fermentation of dilute acid spruce hydrolysate, the most strongly flocculating mutant with dense cell flocs showed significantly faster sugar consumption. The modified strain with the weakest flocculation showed a hexose consumption profile similar to the untransformed strain. These findings may explain why flocculation has evolved as a stress response and can find application in fermentation-based biorefinery processes on lignocellulosic raw materials.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Biofuels
  • Carboxylic Acids / pharmacology
  • Cellulose / metabolism
  • Ethanol / metabolism*
  • Fermentation
  • Flocculation
  • Furaldehyde / pharmacology
  • Industrial Microbiology
  • Saccharomyces cerevisiae / chemistry
  • Saccharomyces cerevisiae / drug effects
  • Saccharomyces cerevisiae / genetics
  • Saccharomyces cerevisiae / metabolism*
  • Saccharomyces cerevisiae Proteins / genetics
  • Saccharomyces cerevisiae Proteins / metabolism

Substances

  • Biofuels
  • Carboxylic Acids
  • Saccharomyces cerevisiae Proteins
  • Ethanol
  • Cellulose
  • Furaldehyde