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Transcriptome of the Alternative Ethanol Production Strain Dekkera bruxellensis CBS 11270 in Sugar Limited Low Oxygen Cultivation

机译:转录的替代乙醇生产菌株德克bruxellensis CBs 11270在糖业有限公司低氧培养

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摘要

Dekkera bruxellensis can outcompete Saccharomyces cerevisiae in environments with low sugar concentrations. It is usually regarded as a spoilage yeast but has lately been identified as an alternative ethanol production organism. In this study, global gene expression in the industrial isolate D. bruxellensis CBS 11270 under oxygen and glucose limitation was investigated by whole transcriptome sequencing using the AB SOLiD technology. Among other observations, we noted expression of respiratory complex I NADH-ubiquinone reductase although D. bruxellensis is a Crabtree positive yeast. The observed higher expression of NADH-generating enzymes compared to NAD+-generating enzymes might be the reason for the previously observed NADH imbalance and resulting Custer effect in D. bruxellensis. Low expression of genes involved in glycerol production is probably the molecular basis for high efficiency of D. bruxellensis metabolism under nutrient limitation. No D. bruxellensis homologs to the genes involved in the final reactions of glycerol biosynthesis were detected. A high number of expressed sugar transporter genes is consistent with the hypothesis that the competitiveness of D. bruxellensis is due to a higher affinity for the limiting substrate.
机译:在低糖浓度的环境中,德克拉德克酵母(Dekkera bruxellensis)可以胜过酿酒酵母(Saccharomyces cerevisiae)。它通常被认为是变质酵母,但最近被确定为可替代的乙醇生产生物。在这项研究中,使用AB SOLiD技术通过全转录组测序研究了在氧气和葡萄糖限制下工业分离株D. bruxellensis CBS 11270中的全局基因表达。在其他观察结果中,我们注意到呼吸复合物I NADH-泛醌还原酶的表达,尽管布鲁氏梭菌是Crabtree阳性酵母。观察到NADH生成酶比NAD + 生成酶高表达,这可能是先前观察到的NADH失衡和由此导致的D. bruxellensis的Custer效应的原因。在营养有限的情况下,与甘油生产有关的基因的低表达可能是D. bruxellensis高效代谢的分子基础。未检测到与甘油生物合成的最终反应中涉及的基因的D. bruxellensis同源物。大量表达的糖转运蛋白基因符合以下假设:布鲁氏梭菌的竞争性是由于对限制性底物的亲和力更高。

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