DSM Biotechnology Center, DSM N.V., Delft, The Netherlands.
Department of Biotechnology, Delft University of Technology, Delft, The Netherlands.
Biotechnol Bioeng. 2022 Aug;119(8):2142-2151. doi: 10.1002/bit.28115. Epub 2022 May 7.
A novel fermentation process was developed in which renewable electricity is indirectly used as an energy source in fermentation, synergistically decreasing both the consumption of sugar as a first generation carbon source and emission of the greenhouse gas CO . As an illustration, a glucose-based process is co-fed with formic acid, which can be generated by capturing CO from fermentation offgas followed by electrochemical reduction with renewable electricity. This "closed carbon loop" concept is demonstrated by a case study in which cofeeding formic acid is shown to significantly increase the yield of biomass on glucose of the industrially relevant yeast species Yarrowia lipolytica. First, the optimal feed ratio of formic acid to glucose is established using chemostat cultivations. Subsequently, guided by a dynamic fermentation process model, a fed-batch protocol is developed and demonstrated on laboratory scale. Finally, the developed fed-batch process is tested and proven to be scalable at pilot scale. Extensions of the concept are discussed to apply the concept to anaerobic fermentations, and to recycle the O that is co-generated with the formic acid to aerobic fermentation processes for intensification purposes.
开发了一种新颖的发酵工艺,其中可再生电力间接用作发酵中的能源,协同降低糖作为第一代碳源的消耗和温室气体 CO 的排放。作为说明,基于葡萄糖的工艺与甲酸共进料,甲酸可以通过捕获发酵废气中的 CO 并随后用可再生电力进行电化学还原来生成。这一“封闭碳循环”概念通过一项案例研究得到了证明,该研究表明,共进料甲酸可显著提高工业相关酵母物种解脂耶氏酵母利用葡萄糖生产生物质的产量。首先,使用恒化器培养确定甲酸与葡萄糖的最佳进料比。随后,根据动态发酵过程模型,开发并在实验室规模上进行了分批补料实验。最后,对开发的分批补料工艺进行了测试,并证明在中试规模上是可扩展的。讨论了该概念的扩展,以将其应用于厌氧发酵,并将与甲酸共生成的 O 回收用于好氧发酵过程以实现强化。