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全基因组过表达筛选酿酒酵母耐醋酸钠。

Genome-wide overexpression screen for sodium acetate resistance in Saccharomyces cerevisiae.

机构信息

Biotechnology Institute, University of Minnesota, 240 Gortner Laboratory, 1479 Gortner Avenue, St. Paul, MN 55108, USA.

出版信息

J Biotechnol. 2013 Mar 10;164(1):26-33. doi: 10.1016/j.jbiotec.2012.12.005. Epub 2012 Dec 20.

Abstract

The production of biofuels from cellulosic biomass is a promising technology for developing a renewable source of energy. Efforts to produce ethanol from cellulosic biomass using microbes, such as the yeast Saccharomyces cerevisiae, face major challenges, including the need for detoxification. Here, we apply a strategy to discover genetic alterations that lead to improved robustness of S. cerevisiae in the presence of acetate, which is present at toxic concentrations in hemicellulose hydrolysates. Acetate in its protonated form (acetic acid) enters the cell through passive diffusion and dissociates into a proton and acetate, acidifying the cytosol and inhibiting cell function, an effect that is exacerbated in the presence of sodium. Through flow cytometry analysis, implemented as part of a novel cell culture technique, the Cytostat, we characterized the deleterious effects of sodium acetate on growth and on cell size homeostasis. Further, using the Cytostat to screen a genome-wide, gene overexpression library, we identified that overexpressing the ENA2 gene, a P-type sodium pump ATPase, provides a significant growth improvement in the presence of sodium acetate. Together, our data support the proposed mechanism for the synergistic growth inhibition exerted by acetate and sodium, as well as the mechanism that develops resistance.

摘要

从纤维素生物质生产生物燃料是开发可再生能源的一项有前途的技术。使用微生物(如酵母酿酒酵母)从纤维素生物质生产乙醇面临重大挑战,包括需要解毒。在这里,我们应用一种策略来发现导致酿酒酵母在存在乙酸时的稳健性得到改善的遗传改变,乙酸在半纤维素水解物中以有毒浓度存在。质子化形式的乙酸(乙酸)通过被动扩散进入细胞,并解离成质子和乙酸,使细胞质酸化并抑制细胞功能,在存在钠离子的情况下,这种作用会加剧。通过流式细胞术分析,作为新型细胞培养技术 Cytostat 的一部分,我们描述了乙酸钠对生长和细胞大小动态平衡的有害影响。此外,使用 Cytostat 筛选全基因组基因过表达文库,我们发现过表达 ENA2 基因(一种 P 型钠泵 ATP 酶)可在存在乙酸钠的情况下显著改善生长。总之,我们的数据支持了乙酸和钠离子协同抑制生长的拟议机制,以及产生抗性的机制。

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