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微生物共培养物的动态通量平衡建模,以实现葡萄糖和木糖混合物的高效批式发酵。

Dynamic flux balance modeling of microbial co-cultures for efficient batch fermentation of glucose and xylose mixtures.

机构信息

Department of Chemical Engineering, University of Massachusetts, Amherst, USA.

出版信息

Biotechnol Bioeng. 2011 Feb;108(2):376-85. doi: 10.1002/bit.22954.

Abstract

Sequential uptake of pentose and hexose sugars that compose lignocellulosic biomass limits the ability of pure microbial cultures to efficiently produce value-added bioproducts. In this work, we used dynamic flux balance modeling to examine the capability of mixed cultures of substrate-selective microbes to improve the utilization of glucose/xylose mixtures and to convert these mixed substrates into products. Co-culture simulations of Escherichia coli strains ALS1008 and ZSC113, engineered for glucose and xylose only uptake respectively, indicated that improvements in batch substrate consumption observed in previous experimental studies resulted primarily from an increase in ZSC113 xylose uptake relative to wild-type E. coli. The E. coli strain ZSC113 engineered for the elimination of glucose uptake was computationally co-cultured with wild-type Saccharomyces cerevisiae, which can only metabolize glucose, to determine if the co-culture was capable of enhanced ethanol production compared to pure cultures of wild-type E. coli and the S. cerevisiae strain RWB218 engineered for combined glucose and xylose uptake. Under the simplifying assumption that both microbes grow optimally under common environmental conditions, optimization of the strain inoculum and the aerobic to anaerobic switching time produced an almost twofold increase in ethanol productivity over the pure cultures. To examine the effect of reduced strain growth rates at non-optimal pH and temperature values, a break even analysis was performed to determine possible reductions in individual strain substrate uptake rates that resulted in the same predicted ethanol productivity as the best pure culture.

摘要

组成木质纤维素生物质的戊糖和己糖的顺序摄取限制了纯微生物培养物高效生产增值生物制品的能力。在这项工作中,我们使用动态通量平衡建模来研究基质选择性微生物混合培养物提高葡萄糖/木糖混合物利用效率并将这些混合基质转化为产物的能力。用于葡萄糖和木糖摄取的大肠杆菌菌株 ALS1008 和 ZSC113 的共培养模拟表明,以前的实验研究中观察到的批处理基质消耗的改善主要是由于相对于野生型大肠杆菌,ZSC113 木糖摄取的增加。为了消除葡萄糖摄取,对大肠杆菌菌株 ZSC113 进行了工程改造,与只能代谢葡萄糖的野生型酿酒酵母进行了计算共培养,以确定与纯培养的野生型大肠杆菌和同时摄取葡萄糖和木糖的酿酒酵母菌株 RWB218 相比,共培养是否能够提高乙醇产量。在两个微生物在共同环境条件下最优生长的简化假设下,通过优化菌株接种和需氧到厌氧的切换时间,与纯培养物相比,乙醇生产率几乎提高了两倍。为了检查在非最佳 pH 值和温度值下菌株生长速率降低的影响,进行了盈亏平衡分析,以确定导致与最佳纯培养物相同预测乙醇生产率的单个菌株底物摄取率的可能降低。

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