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首页> 外文期刊>The international journal of biochemistry and cell biology >Regulation of Lactobacillus plantarum contamination on the carbohydrate and energy related metabolisms of Saccharomyces cerevisiae during bioethanol fermentation
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Regulation of Lactobacillus plantarum contamination on the carbohydrate and energy related metabolisms of Saccharomyces cerevisiae during bioethanol fermentation

机译:植物乳杆菌污染对酿酒酵母生物乙醇发酵过程中碳水化合物和能量相关代谢的调节

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During the industrial bioethanol fermentation, Saccharomyces cerevisiae cells are often stressed by bacterial contaminants, especially lactic acid bacteria. Generally, lactic acid bacteria contamination can inhibit S. cerevisiae cell growth through secreting lactic acid and competing with yeast cells for micronutrients and living space. However, whether are there still any other influences of lactic acid bacteria on yeast or not? In this study, Lactobacillus plantarum ATCC 8014 was co-cultivated with S. cerevisiae S288c to mimic the L: plantarum contamination in industrial bioethanol fermentation. The contaminative L. plantarum-associated expression changes of genes involved in carbohydrate and energy related metabolisms in S. cerevisiae cells were determined by quantitative real-time polymerase chain reaction to evaluate the influence of L plantarum on carbon source utilization and energy related metabolism in yeast cells during bioethanol fermentation. Contaminative L. plantarum influenced the expression of most of genes which are responsible for encoding key enzymes involved in glucose related metabolisms in S. cerevisiae. Specific for, contaminated L plantarum inhibited EMP pathway but promoted TCA cycle, glyoxylate cycle, HMP, glycerol synthesis pathway, and redox pathway in S. cerevisiae cells. In the presence of L. plantarum, the carbon flux in S. cerevisiae cells was redistributed from fermentation to respiratory and more reducing power was produced to deal with the excess NADH. Moreover, L. plantarum contamination might confer higher ethanol tolerance to yeast cells through promoting accumulation of glycerol. These results also highlighted our knowledge about relationship between contaminative lactic acid bacteria and S. cerevisiae during bioethanol fermentation. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在工业生物乙醇发酵过程中,酿酒酵母细胞经常受到细菌污染物,尤其是乳酸菌的压力。通常,乳酸菌污染可通过分泌乳酸并与酵母细胞竞争微量营养素和生存空间来抑制酿酒酵母细胞的生长。但是,乳酸菌对酵母菌是否还有其他影响?在这项研究中,植物乳杆菌ATCC 8014与酿酒酵母S288c共同培养,以模仿工业生物乙醇发酵中的L:植物菌污染。通过定量实时聚合酶链反应确定酿酒酵母细胞中与碳水化合物和能量相关代谢有关的基因与污染的植物乳杆菌相关的表达变化,以评估植物乳杆菌对酵母中碳源利用和能量相关代谢的影响生物乙醇发酵过程中的细胞。污染的植物乳杆菌影响大多数基因的表达,这些基因负责编码参与酿酒酵母葡萄糖相关代谢的关键酶。特定于受污染的植物乳杆菌抑制了啤酒酵母细胞中的EMP途径,但促进了TCA循环,乙醛酸循环,HMP,甘油合成途径和氧化还原途径。在植物乳杆菌存在下,酿酒酵母细胞中的碳通量从发酵过程重新分配到呼吸系统,并产生更多的还原力以应对过量的NADH。此外,植物乳杆菌污染可通过促进甘油的积累而赋予酵母细胞更高的乙醇耐受性。这些结果也突出了我们对生物乙醇发酵过程中污染性乳酸菌与酿酒酵母之间关系的了解。 (C)2015 Elsevier Ltd.保留所有权利。

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