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高通量平行进化葡萄酒酵母以增强代谢表型。

Highly parallelized laboratory evolution of wine yeasts for enhanced metabolic phenotypes.

机构信息

Department of Chemistry and Molecular Biology, University of Gothenburg, PO Box 462, Gothenburg, 40530, Sweden.

Department of Biorefinery and Energy, High-throughput Centre, Research Institutes of Sweden, Örnsköldsvik, 89250, Sweden.

出版信息

Mol Syst Biol. 2024 Oct;20(10):1109-1133. doi: 10.1038/s44320-024-00059-0. Epub 2024 Aug 22.

Abstract

Adaptive Laboratory Evolution (ALE) of microorganisms can improve the efficiency of sustainable industrial processes important to the global economy. However, stochasticity and genetic background effects often lead to suboptimal outcomes during laboratory evolution. Here we report an ALE platform to circumvent these shortcomings through parallelized clonal evolution at an unprecedented scale. Using this platform, we evolved 10 yeast populations in parallel from many strains for eight desired wine fermentation-related traits. Expansions of both ALE replicates and lineage numbers broadened the evolutionary search spectrum leading to improved wine yeasts unencumbered by unwanted side effects. At the genomic level, evolutionary gains in metabolic characteristics often coincided with distinct chromosome amplifications and the emergence of side-effect syndromes that were characteristic of each selection niche. Several high-performing ALE strains exhibited desired wine fermentation kinetics when tested in larger liquid cultures, supporting their suitability for application. More broadly, our high-throughput ALE platform opens opportunities for rapid optimization of microbes which otherwise could take many years to accomplish.

摘要

微生物的适应性实验室进化 (ALE) 可以提高对全球经济重要的可持续工业过程的效率。然而,随机性和遗传背景效应常常导致实验室进化过程中出现次优结果。在这里,我们报告了一个 ALE 平台,通过在前所未有的规模上进行并行克隆进化来规避这些缺点。使用这个平台,我们从许多菌株中平行进化了 10 个酵母种群,以获得 8 个与葡萄酒发酵相关的理想特性。ALE 重复和谱系数量的扩展拓宽了进化搜索范围,从而产生了不受不良副作用影响的改良葡萄酒酵母。在基因组水平上,代谢特征的进化增益常常与明显的染色体扩增和每种选择生态位特有的副作用综合征的出现相一致。当在更大的液体培养物中进行测试时,几个表现出色的 ALE 菌株表现出所需的葡萄酒发酵动力学,这支持了它们的适用性。更广泛地说,我们的高通量 ALE 平台为快速优化微生物提供了机会,否则这可能需要多年时间才能完成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a85f/11450223/564548010723/44320_2024_59_Fig1_HTML.jpg

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