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无介质电发酵提高生物丁醇产量。

Increased Biobutanol Production by Mediator-Less Electro-Fermentation.

机构信息

Bioprocess Engineering, University of Kaiserslautern, 67663 Kaiserslautern, Germany.

Industrial Biotechnology, DECHEMA Research Institute, 60486 Frankfurt am Main, Germany.

出版信息

Biotechnol J. 2019 Apr;14(4):e1800514. doi: 10.1002/biot.201800514. Epub 2018 Dec 6.

Abstract

A future bio-economy should not only be based on renewable raw materials but also in the raise of carbon yields of existing production routes. Microbial electrochemical technologies are gaining increased attention for this purpose. In this study, the electro-fermentative production of biobutanol with C. acetobutylicum without the use of exogenous mediators is investigated regarding the medium composition and the reactor design. It is shown that the use of an optimized synthetic culture medium allows higher product concentrations, increased biofilm formation, and higher conductivities compared to a synthetic medium supplemented with yeast extract. Moreover, the optimization of the reactor system results in a doubling of the maximum product concentrations for fermentation products. When a working electrode is polarized at -600 mV vs. Ag/AgCl, a shift from butyrate to acetone and butanol production is induced. This leads to an increased final solvent yield of Y  = 0.202 g g (control 0.103 g g ), which is also reflected in a higher carbon efficiency of 37.6% compared to 23.3% (control) as well as a fourfold decrease in simplified E-factor to 0.43. The results are promising for further development of biobutanol production in bioelectrochemical systems in order to fulfil the principles of Green Chemistry.

摘要

未来的生物经济不仅应基于可再生原料,还应提高现有生产路线的碳产量。为此,微生物电化学技术受到了越来越多的关注。在这项研究中,针对培养基组成和反应器设计,研究了不使用外源介体的 C. acetobutylicum 电发酵生产生物丁醇。结果表明,与添加酵母提取物的合成培养基相比,使用优化的合成培养基可提高产物浓度、增加生物膜形成和电导率。此外,优化反应器系统可使发酵产物的最大产物浓度提高一倍。当工作电极在-600 mV vs. Ag/AgCl 下极化时,会诱导从丁酸向丙酮和丁醇的生产转变。这导致最终溶剂产率从 Y  = 0.202 g g(对照 0.103 g g)增加,碳效率从 23.3%(对照)提高到 37.6%,简化 E 因子降低到 0.43(对照),降低了四倍。这些结果对于进一步开发生物电化学系统中的生物丁醇生产以满足绿色化学原则具有重要意义。

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