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Gravity-Driven Adaptive Evolution of an Industrial Brewer’s Yeast Strain towards a Snowflake Phenotype in a 3D-Printed Mini Tower Fermentor

机译:在3D打印的微型塔式发酵罐中,重力驱动的工业啤酒酵母菌株向雪花表型的自适应进化。

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We designed a mini tower fermentor that is suitable to perform adaptive laboratory evolution (ALE) with gravity imposed as selective pressure, and suitable to evolve a weak flocculating industrial brewers’ strain towards a strain with a more extended aggregation phenotype. This phenotype is of particular interest in the brewing industry, since it simplifies yeast removal at the end of the fermentation, and many industrial strains are still not sufficiently flocculent. The flow of particles (yeast cells and flocs) was simulated, and the theoretical retainment advantage of aggregating cells over single cells in the tower fermentor was demonstrated. A desktop stereolithography (SLA) printer was used to construct the mini reactor from transparent methacrylic acid esters resin. The printed structures were biocompatible for yeast growth, and could be sterilised by autoclaving. The flexibility of 3D printing allowed the design to be optimized quickly. During the ALE experiment, yeast flocs were observed within two weeks after the start of the continuous cultivation. The flocs showed a “snowflake” morphology, and were not the result of flocculin interactions, but probably the result of (a) mutation(s) in gene(s) that are involved in the mother/daughter separation process.
机译:我们设计了一个微型塔式发酵罐,该发酵罐适合于通过施加重力作为选择压力来进行自适应实验室进化(ALE),并且适合于将絮凝性较弱的工业啤酒酿造株向具有更广泛聚集表型的菌株进化。该表型在酿造工业中特别受关注,因为它简化了发酵结束时的酵母去除过程,而且许多工业菌株仍不够絮凝。模拟了颗粒(酵母细胞和絮凝物)的流动,并证明了在塔式发酵罐中聚集细胞比单个细胞的理论保留优势。使用台式立体光刻(SLA)打印机由透明的甲基丙烯酸酯树脂构建微型反应器。印刷的结构对酵母菌的生长具有生物相容性,可以通过高压灭菌进行灭菌。 3D打印的灵活性允许快速优化设计。在ALE实验期间,在连续培养开始后的两周内观察到酵母絮状物。絮状物表现出“雪花”形态,不是絮凝素相互作用的结果,而是可能是母婴分离过程中基因突变的结果。

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