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Development of a Saccharomyces cerevisiae Strain with Enhanced Resistance to Phenolic Fermentation Inhibitors in Lignocellulose Hydrolysates by Heterologous Expression of Laccase

机译:通过漆酶的异源表达开发具有增强的抗木质素纤维素水解产物中的酚发酵抑制剂抗性的酿酒酵母菌株。

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摘要

To improve production of fuel ethanol from renewable raw materials, laccase from the white rot fungus Trametes versicolor was expressed under control of the PGK1 promoter in Saccharomyces cerevisiae to increase its resistance to phenolic inhibitors in lignocellulose hydrolysates. It was found that the laccase activity could be enhanced twofold by simultaneous overexpression of the homologous t-SNARE Sso2p. The factors affecting the level of active laccase obtained, besides the cultivation temperature, included pH and aeration. Laccase-expressing and Sso2p-overexpressing S. cerevisiae was cultivated in the presence of coniferyl aldehyde to examine resistance to lignocellulose-derived phenolic fermentation inhibitors. The laccase-producing transformant had the ability to convert coniferyl aldehyde at a faster rate than a control transformant not expressing laccase, which enabled faster growth and ethanol formation. The laccase-producing transformant was also able to ferment a dilute acid spruce hydrolysate at a faster rate than the control transformant. A decrease in the content of low-molecular-mass aromatic compounds, accompanied by an increase in the content of high-molecular-mass compounds, was observed during fermentation with the laccase-expressing strain, illustrating that laccase was active even at the very low levels of oxygen supplied. Our results demonstrate the importance of phenolic compounds as fermentation inhibitors and the advantage of using laccase-expressing yeast strains for producing ethanol from lignocellulose.
机译:为了提高可再生原料的燃料乙醇生产,在啤酒酵母中PGK1启动子的控制下表达了白色腐烂菌Trametes versicolor的漆酶,以提高其对木质纤维素水解产物中酚类抑制剂的抗性。已经发现,通过同时过量表达同源t-SNARE Sso2p,漆酶活性可以提高两倍。除培养温度外,影响获得的活性漆酶水平的因素还包括pH和通气。在针叶树醛存在下培养表达漆酶和过表达Sso2p的酿酒酵母,以检测对木质纤维素衍生的酚类发酵抑制剂的抗性。产生漆酶的转化子具有比不表达漆酶的对照转化子以更快的速率转化松柏基醛的能力,这使得能够更快地生长和形成乙醇。产生漆酶的转化体还能够以比对照转化体更快的速率发酵稀酸云杉水解产物。在表达漆酶的菌株发酵过程中观察到低分子量芳族化合物含量的减少,同时高分子量化合物含量的增加,这表明漆酶即使在非常低的温度下也具有活性供应的氧气水平。我们的结果证明了酚类化合物作为发酵抑制剂的重要性,以及使用表达漆酶的酵母菌株从木质纤维素生产乙醇的优势。

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