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HAA1 和 PRS3 的过表达可提高酵母对乙酸的耐受性,从而促进木糖或葡萄糖的消耗:揭示潜在机制。

HAA1 and PRS3 overexpression boosts yeast tolerance towards acetic acid improving xylose or glucose consumption: unravelling the underlying mechanisms.

机构信息

Centre of Biological Engineering (CEB), University of Minho, Campus de Gualtar, 4710-057, Braga, Portugal.

Center of Molecular and Environmental Biology (CBMA), University of Minho, Campus de Gualtar, 4710-057, Braga, Portugal.

出版信息

Appl Microbiol Biotechnol. 2018 May;102(10):4589-4600. doi: 10.1007/s00253-018-8955-z. Epub 2018 Apr 2.

Abstract

Acetic acid tolerance and xylose consumption are desirable traits for yeast strains used in industrial biotechnological processes. In this work, overexpression of a weak acid stress transcriptional activator encoded by the gene HAA1 and a phosphoribosyl pyrophosphate synthetase encoded by PRS3 in a recombinant industrial Saccharomyces cerevisiae strain containing a xylose metabolic pathway was evaluated in the presence of acetic acid in xylose- or glucose-containing media. HAA1 or PRS3 overexpression resulted in superior yeast growth and higher sugar consumption capacities in the presence of 4 g/L acetic acid, and a positive synergistic effect resulted from the simultaneous overexpression of both genes. Overexpressing these genes also improved yeast adaptation to a non-detoxified hardwood hydrolysate with a high acetic acid content. Furthermore, the overexpression of HAA1 and/or PRS3 was found to increase the robustness of yeast cell wall when challenged with acetic acid stress, suggesting the involvement of the modulation of the cell wall integrity pathway. This study clearly shows HAA1 and/or, for the first time, PRS3 overexpression to play an important role in the improvement of industrial yeast tolerance towards acetic acid. The results expand the molecular toolbox and add to the current understanding of the mechanisms involved in higher acetic acid tolerance, paving the way for the further development of more efficient industrial processes.

摘要

在工业生物技术过程中,用于酵母菌株的乙酸耐受和木糖消耗能力是理想的特性。在这项工作中,在含有木糖代谢途径的重组工业酿酒酵母菌株中,评估了基因 HAA1 编码的弱酸胁迫转录激活因子和 PRS3 编码的磷酸核糖焦磷酸合成酶的过表达在木糖或葡萄糖存在下含乙酸的能力。在 4 g/L 乙酸存在下,HAA1 或 PRS3 的过表达导致酵母生长更好,糖消耗能力更高,并且这两个基因的同时过表达产生了正协同效应。过表达这些基因还改善了酵母对含有高浓度乙酸的未解毒硬木水解物的适应能力。此外,发现过表达 HAA1 和/或 PRS3 可增加酵母细胞壁对乙酸胁迫的适应能力,表明细胞壁完整性途径的调节参与其中。这项研究清楚地表明,HAA1 和/或(首次)PRS3 的过表达在提高工业酵母对乙酸的耐受性方面发挥了重要作用。该结果扩展了分子工具包,并增加了对更高乙酸耐受性相关机制的理解,为进一步开发更有效的工业工艺铺平了道路。

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