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(67e) Dynamic Flux Balance Modeling of a Microbial Co-Culture for Efficient Batch Fermentation of Glucose and Xylose Mixtures

机译:(67E)微生物共同培养的动态通量平衡模型,用于葡萄糖和木糖混合物的高效批量发酵

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A requirement for the economically viable production of fuels from cellulosic biomass is the efficient consumption and conversion of its constituent sugars. Genetically engineering a single organism to metabolize multiple sugars typically results in inefficiencies due to diauxic growth or limitations in substrate uptake. Here, we present a model of a synthetic consortium for the production of ethanol composed of wild-type Saccharomyces cerevisiae and Escherichia coli strain ZSC113, two microbes that will specifically uptake glucose and xylose respectively. Dynamic flux balance analysis is employed to compare this co-culture to mono-cultures of the strains of the component microbes capable of consuming both sugars in terms of ethanol productivity. The effects of altering the amount of each microbe present in reactor inoculum and changing the time at which the batch is switched from aerobic to anaerobic cultivation are investigated. Through these process engineering strategies, a nearly two-fold increase in ethanol productivity over pure cultures in silico is achieved. Future work will focus on verifying these results experimentally to test the validity of assumptions made in our model.
机译:一种用于经济可行的从纤维素生物质燃料的要求是其组成糖的高效消耗和转化率。遗传工程改造单一生物体代谢由于在底物吸收二次生长或限制多种糖通常导致低效率。这里,我们提出一种合成财团的模型为野生型酿酒酵母和大肠杆菌的构成的乙醇生产的菌株ZSC113,二微生物将特异性摄取葡萄糖和木糖分别。采用动态通量平衡分析来比较这共培养为单培养物能够在乙醇生产率方面都消耗的糖的组分的微生物的菌株。改变每个存在于反应器中的接种物的微生物的量,并且改变在所述批料从有氧切换到厌氧培养时间的影响进行了研究。通过这些工艺技术策略,在乙醇生产效率几乎提高两倍以上纯培养物在硅片实现。今后的工作重点将放在实验验证这些结果来检验我们的模型中做出的假设的有效性。

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