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用于高效消耗葡萄糖/木糖混合物的酿酒酵母和大肠杆菌共培养物的动态通量平衡建模。

Dynamic flux balance modeling of S. cerevisiae and E. coli co-cultures for efficient consumption of glucose/xylose mixtures.

机构信息

Department of Chemical Engineering, University of Massachusetts, Amherst, MA 01003-3110, USA.

出版信息

Appl Microbiol Biotechnol. 2012 Mar;93(6):2529-41. doi: 10.1007/s00253-011-3628-1. Epub 2011 Oct 18.

Abstract

Current researches into the production of biochemicals from lignocellulosic feedstocks are focused on the identification and engineering of individual microbes that utilize complex sugar mixtures. Microbial consortia represent an alternative approach that has the potential to better exploit individual species capabilities for substrate uptake and biochemical production. In this work, we construct and experimentally validate a dynamic flux balance model of a Saccharomyces cerevisiae and Escherichia coli co-culture designed for efficient aerobic consumption of glucose/xylose mixtures. Each microbe is a substrate specialist, with wild-type S. cerevisiae consuming only glucose and engineered E. coli strain ZSC113 consuming only xylose, to avoid diauxic growth commonly observed in individual microbes. Following experimental identification of a common pH and temperature for optimal co-culture batch growth, we demonstrate that pure culture models developed for optimal growth conditions can be adapted to the suboptimal, common growth condition by adjustment of the non-growth associated ATP maintenance of each microbe. By comparing pure culture model predictions to co-culture experimental data, the inhibitory effect of ethanol produced by S. cerevisiae on E. coli growth was found to be the only interaction necessary to include in the co-culture model to generate accurate batch profile predictions. Co-culture model utility was demonstrated by predicting initial cell concentrations that yield simultaneous glucose and xylose exhaustion for different sugar mixtures. Successful experimental validation of the model predictions demonstrated that steady-state metabolic reconstructions developed for individual microbes can be adapted to develop dynamic flux balance models of microbial consortia for the production of renewable chemicals.

摘要

目前,从木质纤维素饲料原料生产生物化学物质的研究集中在鉴定和工程化利用复杂糖混合物的单个微生物上。微生物群落代表了一种替代方法,有可能更好地利用单个物种对基质吸收和生物化学生产的能力。在这项工作中,我们构建并实验验证了一个用于高效好氧消耗葡萄糖/木糖混合物的酿酒酵母和大肠杆菌共培养的动态通量平衡模型。每个微生物都是一种基质专家,野生型酿酒酵母只消耗葡萄糖,而工程化的大肠杆菌菌株 ZSC113 只消耗木糖,以避免在单个微生物中常见的双相生长。在实验确定了最佳共培养分批生长的共同 pH 值和温度之后,我们证明,通过调整每个微生物的非生长相关 ATP 维持,可以将为最佳生长条件开发的纯培养模型适应次优的常见生长条件。通过将纯培养模型预测与共培养实验数据进行比较,发现酿酒酵母产生的乙醇对大肠杆菌生长的抑制作用是在共培养模型中包含的唯一必要相互作用,以生成准确的批量曲线预测。通过预测不同糖混合物同时耗尽葡萄糖和木糖所需的初始细胞浓度,展示了共培养模型的实用性。对模型预测的成功实验验证表明,为单个微生物开发的稳态代谢重建可以适应开发用于可再生化学品生产的微生物群落的动态通量平衡模型。

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