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Enhancing Butanol Production under the Stress Environments of Co-Culturing Clostridium acetobutylicum/Saccharomyces cerevisiae Integrated with Exogenous Butyrate Addition

机译:联合外源丁酸酯添加的丙酮丁醇梭菌/酿酒酵母联合胁迫环境下提高丁醇生产

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摘要

In this study, an efficient acetone-butanol-ethanol (ABE) fermentation strategy integrating Clostridium acetobutylicum/Saccharomyces cerevisiae co-culturing system with exogenous butyrate addition, was proposed and experimentally conducted. In solventogenic phase, by adding 0.2 g-DCW/L-broth viable S. cerevisiae cells and 4.0 g/L-broth concentrated butyrate solution into C. acetobutylicum culture broth, final butanol concentration and butanol/acetone ratio in a 7 L anaerobic fermentor reached the highest levels of 15.74 g/L and 2.83 respectively, with the increments of 35% and 43% as compared with those of control. Theoretical and experimental analysis revealed that, the proposed strategy could, 1) extensively induce secretion of amino acids particularly lysine, which are favorable for both C. acetobutylicum survival and butanol synthesis under high butanol concentration environment; 2) enhance the utilization ability of C. acetobutylicum on glucose and over-produce intracellular NADH for butanol synthesis in C. acetobutylicum metabolism simultaneously; 3) direct most of extra consumed glucose into butanol synthesis route. The synergetic actions of effective amino acids assimilation, high rates of substrate consumption and NADH regeneration yielded highest butanol concentration and butanol ratio in C. acetobutylicum under this stress environment. The proposed method supplies an alternative way to improve ABE fermentation performance by traditional fermentation technology.
机译:在这项研究中,提出了一种有效的丙酮-丁醇-乙醇(ABE)发酵策略,该方法将丙酮丁醇梭菌/酿酒酵母共培养系统与外源丁酸添加相结合。在产溶剂阶段,通过向0.2升DCW / L浓汤啤酒酵母活细胞和4.0克/升浓啤酒丁酸溶液中加入丙酮丁醇梭菌培养液,在7升厌氧发酵罐中最终丁醇浓度和丁醇/丙酮比。达到最高水平分别为15.74 g / L和2.83,与对照相比增加了35%和43%。理论和实验分析表明,所提出的策略可以:1)广泛诱导氨基酸特别是赖氨酸的分泌,这对于高丁醇浓度环境下丙酮丁醇梭菌的生存和丁醇的合成都是有利的; 2)提高丙酮丁醇梭菌对葡萄糖的利用能力,同时在丙酮丁醇梭菌代谢中过量产生胞内NADH用于丁醇合成; 3)将大部分多余的葡萄糖引导到丁醇合成路线中。在此胁迫环境下,有效的氨基酸同化作用,高的底物消耗率和NADH再生的协同作用在丙酮丁醇梭菌中产生最高的丁醇浓度和丁醇比。所提出的方法提供了一种通过传统发酵技术提高ABE发酵性能的替代方法。

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