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从浓缩底物生产丙酮丁醇乙醇(ABE):通过补料分批技术降低底物抑制以及通过气提降低产物抑制。

Acetone butanol ethanol (ABE) production from concentrated substrate: reduction in substrate inhibition by fed-batch technique and product inhibition by gas stripping.

作者信息

Ezeji T C, Qureshi N, Blaschek H P

机构信息

Biotechnology and Bioengineering Group, Department of Food Science and Human Nutrition, University of Illinois, 1207 W Gregory Drive, Urbana, IL 61801, USA.

出版信息

Appl Microbiol Biotechnol. 2004 Feb;63(6):653-8. doi: 10.1007/s00253-003-1400-x. Epub 2003 Aug 9.

DOI:10.1007/s00253-003-1400-x
PMID:12910325
Abstract

Acetone butanol ethanol (ABE) was produced in an integrated fed-batch fermentation-gas stripping product-recovery system using Clostridium beijerinckii BA101, with H(2) and CO(2) as the carrier gases. This technique was applied in order to eliminate the substrate and product inhibition that normally restricts ABE production and sugar utilization to less than 20 g l(-1) and 60 g l(-1), respectively. In the integrated fed-batch fermentation and product recovery system, solvent productivities were improved to 400% of the control batch fermentation productivities. In a control batch reactor, the culture used 45.4 g glucose l(-1) and produced 17.6 g total solvents l(-1) (yield 0.39 g g(-1), productivity 0.29 g l(-1) h(-1)). Using the integrated fermentation-gas stripping product-recovery system with CO(2) and H(2) as carrier gases, we carried out fed-batch fermentation experiments and measured various characteristics of the fermentation, including ABE production, selectivity, yield and productivity. The fed-batch reactor was operated for 201 h. At the end of the fermentation, an unusually high concentration of total acids (8.5 g l(-1)) was observed. A total of 500 g glucose was used to produce 232.8 g solvents (77.7 g acetone, 151.7 g butanol, 3.4 g ethanol) in 1 l culture broth. The average solvent yield and productivity were 0.47 g g(-1) and 1.16 g l(-1) h(-1), respectively.

摘要

采用拜氏梭菌BA101,以氢气和二氧化碳作为载气,在集成补料分批发酵 - 气提产物回收系统中生产丙酮 - 丁醇 - 乙醇(ABE)。应用该技术是为了消除通常限制ABE产量和糖利用率的底物和产物抑制,正常情况下二者分别低于20 g/L和60 g/L。在集成补料分批发酵和产物回收系统中,溶剂生产率提高到对照分批发酵生产率的400%。在对照分批反应器中,培养物消耗45.4 g/L葡萄糖,产生17.6 g/L总溶剂(产率0.39 g/g,生产率0.29 g/L·h)。使用以二氧化碳和氢气作为载气的集成发酵 - 气提产物回收系统,我们进行了补料分批发酵实验,并测量了发酵的各种特性,包括ABE产量、选择性、产率和生产率。补料分批反应器运行201小时。在发酵结束时,观察到总酸浓度异常高(8.5 g/L)。在1 L培养液中,共使用500 g葡萄糖生产了232.8 g溶剂(77.7 g丙酮、151.7 g丁醇、3.4 g乙醇)。平均溶剂产率和生产率分别为0.47 g/g和1.16 g/L·h。

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