Related Experiment Video
Updated: Sep 20, 2025

Techniques for the Evolution of Robust Pentose-fermenting Yeast for Bioconversion of Lignocellulose to Ethanol
Published on: October 24, 2016
Reduced sensitivity of lager brewing yeast to premature yeast flocculation via adaptive evolution
Yang He1, Hua Yin1, Jianjun Dong1
1State Key Laboratory of Biological Fermentation Engineering of Beer, Tsingtao Brewery Co. Ltd., Qingdao, 266100, PR China.
Abstract:
Malt-induced premature yeast flocculation (PYF) is a sporadic problem within the brewing industry. The use of PYF malts is concomitant with a number of negative impacts on beer quality, including incomplete fermentation and/or flavor defects. Although malt-induced PYF is widely acknowledged, actions taken so far have proved insufficient to solve the PYF-related issues. To limit the detrimental effects of PYF malts on beer production, an adaptive laboratory evolution (ALE) process was applied in this study to an industrial lager brewing yeast strain (TT02), in an attempt to generate variant strains with improved fermentation performance in PYF wort. Through a batch fermentation-based adaptation process, evolved variants were isolated and screened for their phenotypic and metabolic traits. The investigation focused mainly on the tendency to remain in suspension, fermentation capacity and final acetaldehyde concentration. We successfully obtained a variant (TT02-30 T) with improved fermentation properties. The improvement was seen in worts prepared from different types of PYF malt as well as normal malt. Furthermore, ALE of lager brewing yeast in PYF wort yielded a wide array of mutations. Several changes in the genomes (copy number variation in flocculin encoding gene FLO1 and a missense SNP in a putative mitochondrial membrane protein coding gene FMP10) of the variant strains relative to the original strain were observed. These could potentially contribute to the improved yeast suspension during fermentation. Importantly, mutational enrichment in genes related to ion binding in PYF-evolved strains suggests the involvement of the yeast ion transportation process in dealing with the PYF stress. Our study demonstrates the possibility of attenuating yeast sensitivity to PYF malts over time through adaptive laboratory evolution via spontaneous mutation.
Insights
Brewing yeast was adapted using laboratory evolution to overcome premature yeast flocculation (PYF) caused by specific malts. This resulted in a variant strain with improved fermentation, demonstrating a method to mitigate PYF malt issues.
Area of Science:
- * Brewing Science
- * Yeast Genetics
- * Fermentation Technology
Background:
- * Malt-induced premature yeast flocculation (PYF) negatively impacts beer quality, causing incomplete fermentation and flavor defects.
- * Existing solutions for PYF malts are insufficient, necessitating novel approaches to improve yeast performance.
Purpose of the Study:
- * To develop a yeast strain variant capable of improved fermentation in wort derived from PYF malts.
- * To investigate the genetic and phenotypic changes underlying enhanced yeast performance under PYF stress.
Main Methods:
- * Adaptive laboratory evolution (ALE) using batch fermentation was employed on an industrial lager yeast strain (TT02).
- * Evolved variants were screened for improved suspension, fermentation capacity, and reduced acetaldehyde concentration.
- * Genomic analysis was performed to identify mutations in the adapted yeast strains.
Main Results:
- * A yeast variant (TT02-30T) exhibiting enhanced fermentation in PYF and normal worts was successfully generated.
- * Genomic analysis revealed copy number variation in FLO1 and a missense SNP in FMP10, potentially contributing to improved yeast suspension.
- * Mutational enrichment in ion binding genes suggests yeast ion transport is crucial for managing PYF stress.
Conclusions:
- * Adaptive laboratory evolution is a viable strategy to attenuate yeast sensitivity to PYF malts.
- * The study identified specific genetic changes and pathways involved in yeast adaptation to PYF stress.
- * This research offers a potential solution for the brewing industry to mitigate the detrimental effects of PYF malts.

