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泛酸缺乏和添加乙酸盐对酿酒酵母厌氧分批发酵葡萄糖的影响。

The effects of pantothenate deficiency and acetate addition on anaerobic batch fermentation of glucose by Saccharomyces cerevisiae.

作者信息

Taherzadeh M J, Lidén G, Gustafsson L, Niklasson C

机构信息

Department of Chemical Reaction Engineering, Chalmers University of Technology, Göteborg, Sweden.

出版信息

Appl Microbiol Biotechnol. 1996 Sep;46(2):176-82. doi: 10.1007/s002530050801.

DOI:10.1007/s002530050801
PMID:8987648
Abstract

Physiological effects of deficiency of pantothenate, a necessary precursor in the synthesis of coenzyme A, were studied using the yeast strain Saccharomyces cerevisiae CBS 8066. Cells were grown on defined media in anaerobic batch cultures with glucose (50 g/l) as the carbon and energy source. Batch cultures containing more than 60 micrograms/l pantothenate showed no significant differences with respect to growth rates and product yields. However, with an initial pantothenate concentration at 30 micrograms/l, the average glucose consumption rate was 50% lower than in rich medium and, at even lower concentration of pantothenate, the culture did not consume all the glucose in the medium. Furthermore, pantothenate deficiency caused the acetate and pyruvate yields to increase and the biomass yield to decrease, compared to the yields in pantothenate-rich medium. The increased acetate formation could be counteracted by initial addition of acetate to the medium, and thereby the glycerol yield could be decreased. An initial addition of acetate of 1.6 g/l to pantothenate-deficient medium (30 micrograms/l) caused a 35% decrease in glycerol yield and a 6% increase in ethanol yield. Furthermore, the time required for complete conversion of the glucose decreased by 40%. Acetate addition affected the acetate and glycerol yields in a similar way in pantothenate-rich medium (1000 micrograms/l) also.

摘要

使用酿酒酵母菌株Saccharomyces cerevisiae CBS 8066研究了泛酸盐(辅酶A合成中的必需前体)缺乏的生理效应。细胞在限定培养基中以葡萄糖(50 g/l)作为碳源和能源进行厌氧分批培养。含有超过60微克/升泛酸盐的分批培养物在生长速率和产物产量方面没有显著差异。然而,当初始泛酸盐浓度为30微克/升时,平均葡萄糖消耗速率比在丰富培养基中低50%,并且在更低的泛酸盐浓度下,培养物并未消耗培养基中的所有葡萄糖。此外,与富含泛酸盐的培养基中的产量相比,泛酸盐缺乏导致乙酸盐和丙酮酸盐产量增加,生物量产量降低。通过向培养基中初始添加乙酸盐可以抵消乙酸盐形成的增加,从而可以降低甘油产量。向缺乏泛酸盐的培养基(30微克/升)中初始添加1.6克/升乙酸盐会导致甘油产量降低35%,乙醇产量增加6%。此外,葡萄糖完全转化所需的时间减少了40%。在富含泛酸盐的培养基(1000微克/升)中,添加乙酸盐对乙酸盐和甘油产量的影响方式也类似。

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