Experimental evolution and hybridization enhance the fermentative capacity of wild Saccharomyces eubayanus strains.

Wladimir Mardones, Valentina Abarca, Roberto F Nespolo, Francisco A Cubillos, Franco Vega-Macaya, Pablo Villarreal, Tomas A Peña, Agustín A Cofré, Christian I Oporto

Journal: FEMS yeast research 2025;25():

PMID: 39880790

Abstract

Lager beer is traditionally fermented using Saccharomyces pastorianus. However, the limited availability of lager yeast strains restricts the potential range of beer profiles. Recently, Saccharomyces eubayanus strains showed the potential to impart novel aromas to beer, with slower fermentation rates than commercial strains. Here, we applied experimental evolution to nine S. eubayanus strains using three different selective conditions to generate improved strains to fermentative environments. We observed environment-dependent fitness changes across strains, with ethanol-enriched media resulting in the greatest fitness improvement. We identified subtelomeric genomic changes in a deficient fermentative strain underlying the greatest fitness improvement. Gene expression analysis and genome sequencing identified genes associated with oxidative stress, amino acid metabolism, sterol biosynthesis, and vacuole morphology underlying differences between evolved and the ancestral strain, revealing the cellular processes underlying fermentation improvement. A hybridization strategy between two evolved strains allowed us to expand the phenotypic space of the F2 segregants, obtaining strains with a 13.7% greater fermentative capacity relative to the best evolved parental strains. Our study highlights the potential of integrating experimental evolution and hybridization to enhance the fermentation capacity of wild yeast strains, offering strengthened solutions for industrial applications and highlighting the potential of Patagonian S. eubayanus in brewing.

© The Author(s) 2025. Published by Oxford University Press on behalf of FEMS.

Address: Facultad de Química y Biología, Departamento de Biología, Universidad de Santiago de Chile, Santiago 9170022, Chile.; Millennium Institute for Integrative Biology, Santiago 7500574, Chile.; Facultad de Química y Biología, Departamento de Biología, Universidad de Santiago de Chile, Santiago 9170022, Chile.; Millennium Institute for Integrative Biology, Santiago 7500574, Chile.; Centro Científico y Tecnológico de Excelencia Ciencia & Vida, Fundación Ciencia & Vida, Huechuraba, Santiago 8580702, Chile.; Millennium Institute for Integrative Biology, Santiago 7500574, Chile.; Millenium Nucleus of Patagonian Limit of Life (LiLi)  Valdivia 5110566, Chile.; Facultad de Química y Biología, Departamento de Biología, Universidad de Santiago de Chile, Santiago 9170022, Chile.; Millenium Nucleus of Patagonian Limit of Life (LiLi)  Valdivia 5110566, Chile.; Millennium Institute for Integrative Biology, Santiago 7500574, Chile.; Millennium Institute for Integrative Biology, Santiago 7500574, Chile.; Millenium Nucleus of Patagonian Limit of Life (LiLi)  Valdivia 5110566, Chile.; Instituto de Ciencias Ambientales y Evolutivas, Universidad Austral de Chile, Valdivia 5110566, Chile.; Center of Applied Ecology and Sustainability, Facultad de Ciencias Biológicas, Universidad Católica de Chile, Santiago, 6904411, Chile.; Facultad de Química y Biología, Departamento de Biología, Universidad de Santiago de Chile, Santiago 9170022, Chile.; Millennium Institute for Integrative Biology, Santiago 7500574, Chile.; Millenium Nucleus of Patagonian Limit of Life (LiLi)  Valdivia 5110566, Chile.
Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.