LBE, INRA, 102 Avenue des étangs, 11100 Narbonne, France.
Sci Rep. 2017 Mar 13;7:44334. doi: 10.1038/srep44334.
Interspecies electron transfer is a common way to couple metabolic energy balances between different species in mixed culture consortia. Direct interspecies electron transfer (DIET) mechanism has been recently characterised with Geobacter species which couple the electron balance with other species through physical contacts. Using this mechanism could be an efficient and cost-effective way to directly control redox balances in co-culture fermentation. The present study deals with a co-culture of Geobacter sulfurreducens and Clostridium pasteurianum during glycerol fermentation. As a result, it was shown that Geobacter sulfurreducens was able to grow using Clostridium pasteurianum as sole electron acceptor. C. pasteurianum metabolic pattern was significantly altered towards improved 1,3-propanediol and butyrate production (+37% and +38% resp.) at the expense of butanol and ethanol production (-16% and -20% resp.). This metabolic shift was clearly induced by a small electron uptake that represented less than 0.6% of the electrons consumed by C. pasteurianum. A non-linear relationship was found between G. sulfurreducens growth (i.e the electrons transferred between the two species) and the changes in C. pasteurianum metabolite distribution. This study opens up new possibilities for controlling and increasing specificity in mixed culture fermentation.
种间电子传递是混合培养物中不同物种代谢能量平衡偶联的一种常见方式。最近已经对产电菌属(Geobacter)物种的直接种间电子传递(DIET)机制进行了描述,这些物种通过物理接触将电子平衡与其他物种联系起来。利用这种机制可能是直接控制共培养发酵中氧化还原平衡的有效且具有成本效益的方法。本研究涉及在甘油发酵过程中,将脱硫弧菌(Geobacter sulfurreducens)和丙酮丁醇梭菌(Clostridium pasteurianum)进行共培养。结果表明,脱硫弧菌可以利用丙酮丁醇梭菌作为唯一的电子受体进行生长。丙酮丁醇梭菌的代谢模式发生了显著变化,1,3-丙二醇和丁酸的产量分别提高了+37%和+38%(分别),而丁醇和乙醇的产量分别降低了-16%和-20%(分别)。这种代谢转变显然是由丙酮丁醇梭菌消耗的电子中不到 0.6%的一小部分电子被吸收引起的。发现脱硫弧菌的生长(即两种物种之间传递的电子)与丙酮丁醇梭菌代谢物分布的变化之间存在非线性关系。这项研究为控制和增加混合培养发酵的特异性开辟了新的可能性。