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首页> 外文期刊>FEMS Yeast Research >Dekkera bruxellensis-spoilage yeast with biotechnological potential, and a model for yeast evolution, physiology and competitiveness
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Dekkera bruxellensis-spoilage yeast with biotechnological potential, and a model for yeast evolution, physiology and competitiveness

机译:Dekkera Bruxellensis-腐败酵母,具有生物技术潜力,以及酵母进化,生理学和竞争力的模型

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摘要

Dekkera bruxellensis is a non-conventional yeast normally considered a spoilage organism in wine (off-flavours) and in the bioethanol industry. But it also has potential as production yeast. The species diverged from Saccharomyces cerevisiae 200 mya, before the whole genome duplication. However, it displays similar characteristics such as being Crabtree-and petite positive, and the ability to grow anaerobically. Partial increases in ploidy and promoter rewiring may have enabled evolution of the fermentative lifestyle in D. bruxellensis. On the other hand, it has genes typical for respiratory yeasts, such as for complex I or the alternative oxidase AOX1. Dekkera bruxellensis grows more slowly than S. cerevisiae, but produces similar or greater amounts of ethanol, and very low amounts of glycerol. Glycerol production represents a loss of energy but also functions as a redox sink for NADH formed during synthesis of amino acids and other compounds. Accordingly, anaerobic growth required addition of certain amino acids. In spite of its slow growth, D. bruxellensis outcompeted S. cerevisiae in glucose-limited cultures, indicating a more efficient energy metabolism and/or higher affinity for glucose. This review tries to summarize the latest discoveries about evolution, physiology and metabolism, and biotechnological potential of D. bruxellensis.
机译:Dekkera Bruxellensis是一种非常规酵母,通常认为葡萄酒(异味道)和生物乙醇行业中的腐败生物。但它也具有潜力作为生产酵母。在全基因组重复之前,物种从酿酒酵母200 mya分歧。然而,它显示出类似的特征,例如Crabtree-和娇小阳性,并且能够生长厌氧上。倍倍增器和启动子重新挤出的部分增加可能在D.Bruxellensis中实现了发酵生活方式的进化。另一方面,它具有呼吸酵母的典型基因,例如复合物I或替代的氧化酶AOX1。 Dekkera Bruxellensis比酿酒酵母增长速度慢,但产生类似或更大量的乙醇,并且非常低量的甘油。甘油生产代表能量丧失,但也用作在合成氨基酸和其他化合物期间形成的NADH的氧化还原水槽。因此,厌氧生长需要添加某些氨基酸。尽管它的增长缓慢,D.Bruxellensis以葡萄糖有限的培养物脱颖而出,表明对葡萄糖的更有效的能量代谢和/或更高的亲和力。该审查试图总结关于进化,生理学和新陈代谢以及D. Bruxellensis的生物技术潜力的最新发现。

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