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好氧条件下丙酮丁醇梭菌与 Nest erenkonia 属 F 菌株共培养生产丁醇的效率

Efficient butanol production under aerobic conditions by coculture of Clostridium acetobutylicum and Nesterenkonia sp. strain F.

机构信息

Department of Biotechnology, Faculty of Biological Science and Technology, University of Isfahan, Isfahan, Iran.

Environmental Research Institute, Department of Environmental Biotechnology, University of Isfahan, Isfahan, Iran.

出版信息

Biotechnol Bioeng. 2020 Feb;117(2):392-405. doi: 10.1002/bit.27221. Epub 2019 Nov 19.

DOI:10.1002/bit.27221
PMID:31709516
Abstract

Clostridium acetobutylicum is widely used for the microbial production of butanol in a process known as acetone-butanol-ethanol (ABE) fermentation. However, this process suffers from several disadvantages including high oxygen sensitivity of the bacterium which makes the process complicated and necessitate oxygen elimination in the culture medium. Nesterenkonia sp. strain F has attracted interests as the only known non-Clostridia microorganism with inherent capability of butanol production even in the presence of oxygen. This bacterium is not delimited by oxygen sensitivity, a challenge in butanol biosynthesis, but the butanol titer was far below Clostridia. In this study, Nesterenkonia sp. strain F was cocultivated with C. acetobutylicum to form a powerful "coculture" for butanol production thereby eliminating the need for oxygen removal before fermentation. The response surface method was used for obtaining optimal inoculation amount/time and media formulation. The highest yield, 0.31 g/g ABE (13.6 g/L butanol), was obtained by a coculture initiated with 1.5 mg/L Nesterenkonia sp. strain F and inoculated with 15 mg/L C. acetobutylicum after 1.5 hr in a medium containing 67 g/L glucose, 2.2 g/L yeast extract, 4 g/L peptone, and 1.4% (vol/vol) P2 solution. After butanol toxicity assessment, where Nesterenkonia sp. strain F showed no butanol toxicity, the coculture was implemented in a 2 L fermenter with continual aeration leading to 20 g/L ABE.

摘要

丙酮丁醇乙醇(ABE)发酵是一种利用梭菌生产丁醇的方法,广泛应用于微生物生产丁醇。然而,该过程存在一些缺点,包括细菌对氧气的高度敏感,这使得该过程复杂化,并需要在培养基中消除氧气。Nesterenkonia sp. strain F 作为唯一已知的具有固有产丁醇能力的非梭菌微生物,即使在有氧存在的情况下,也引起了人们的兴趣。这种细菌不受氧气敏感性的限制,这是丁醇生物合成的一个挑战,但丁醇产量远低于梭菌。在这项研究中,Nesterenkonia sp. strain F 与 C. acetobutylicum 共培养,形成了一种强大的“共培养”,用于生产丁醇,从而消除了发酵前去除氧气的需要。响应面法用于获得最佳接种量/时间和培养基配方。在含有 67g/L 葡萄糖、2.2g/L 酵母提取物、4g/L 蛋白胨和 1.4%(体积/体积)P2 溶液的培养基中,用 1.5mg/L Nesterenkonia sp. strain F 起始、15mg/L C. acetobutylicum 接种 1.5 小时后,获得了最高产量 0.31g/g ABE(13.6g/L 丁醇)。在对 Nesterenkonia sp. strain F 没有丁醇毒性进行评估后,该共培养在持续通气的 2L 发酵罐中实施,导致产生 20g/L ABE。

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