Strain dynamics of contaminating bacteria modulate the yield of ethanol biorefineries

Author:

de Oliveira Lino Felipe SenneORCID,Garg ShilpaORCID,Li Simone S.,Misiakou Maria-Anna,Kang KangORCID,Vale da Costa Bruno Labate,Beyer-Pedersen Tobias Svend-AageORCID,Giacon Thamiris GuerraORCID,Basso Thiago OlittaORCID,Panagiotou GianniORCID,Sommer Morten Otto AlexanderORCID

Abstract

AbstractBioethanol is a sustainable energy alternative and can contribute to global greenhouse-gas emission reductions by over 60%. Its industrial production faces various bottlenecks, including sub-optimal efficiency resulting from bacteria. Broad-spectrum removal of these contaminants results in negligible gains, suggesting that the process is shaped by ecological interactions within the microbial community. Here, we survey the microbiome across all process steps at two biorefineries, over three timepoints in a production season. Leveraging shotgun metagenomics and cultivation-based approaches, we identify beneficial bacteria and find improved outcome when yeast-to-bacteria ratios increase during fermentation. We provide a microbial gene catalogue which reveals bacteria-specific pathways associated with performance. We also show that Limosilactobacillus fermentum overgrowth lowers production, with one strain reducing yield by ~5% in laboratory fermentations, potentially due to its metabolite profile. Temperature is found to be a major driver for strain-level dynamics. Improved microbial management strategies could unlock environmental and economic gains in this US $ 60 billion industry enabling its wider adoption.

Funder

Novo Nordisk Fonden

European Molecular Biology Organization

Department of Health | National Health and Medical Research Council

Ministry of Science, Technology and Innovation | Conselho Nacional de Desenvolvimento Científico e Tecnológico

Publisher

Springer Science and Business Media LLC

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