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梭菌属丙酮丁醇梭菌的代谢工程改造以提高丁酸产量。

Metabolic engineering of Clostridium acetobutylicum for enhanced production of butyric acid.

机构信息

Metabolic and Biomolecular Engineering National Research Laboratory, Department of Chemical and Biomolecular Engineering, BioProcess Engineering Research Center, Center for Systems and Synthetic Biotechnology, Institute for the BioCentury, KAIST, 291 Daehak-ro, Yuseong-gu, Daejeon, 305-701, Republic of Korea.

出版信息

Appl Microbiol Biotechnol. 2013 Nov;97(21):9355-63. doi: 10.1007/s00253-013-5161-x. Epub 2013 Sep 8.

Abstract

Clostridium acetobutylicum has been considered as an attractive platform host for biorefinery due to its metabolic diversity. Considering its capability to overproduce butanol through butyrate, it was thought that butyric acid can also be efficiently produced by this bacterium through metabolic engineering. The pta-ctfB-deficient C. acetobutylicum CEKW, in which genes encoding phosphotransacetylase and CoA-transferase were knocked out, was assessed for its potential as a butyric acid producer in fermentations with four controlled pH values at 5.0, 5.5, 6.0, and 6.4. Butyric acid could be best produced by fermentation of the CEKW at pH 6.0, resulting in the highest titer of 26.6 g/l, which is 6.4 times higher than that obtained with the wild type. However, due to the remaining solventogenic ability of the CEKW, 3.6 g/l solvents were also produced. Thus, the CEKW was further engineered by knocking out the adhE1-encoding aldehyde/alcohol dehydrogenase to prevent solvent production. Batch fermentation of the resulting C. acetobutylicum HCEKW at pH 6.0 showed increased butyric acid production to 30.8 g/l with a ratio of butyric-to-acetic acid (BA/AA) of 6.6 g/g and a productivity of 0.72 g/l/h from 86.9 g/l glucose, while negligible solvent (0.8 g/l ethanol only) was produced. The butyric acid titer, BA/AA ratio, and productivity obtained in this study were the highest values reported for C. acetobutylicum, and the BA/AA ratio and productivity were also comparable to those of native butyric acid producer Clostridium tyrobutyricum. These results suggested that the simultaneous deletion of the pta-ctfB-adhE1 in C. acetobutylicum resulted in metabolic switch from biphasic to acidogenic fermentation, which enhanced butyric acid production.

摘要

丙酮丁醇梭菌由于其代谢多样性,被认为是生物炼制的有吸引力的平台宿主。考虑到其通过丁酸过度生产丁醇的能力,人们认为这种细菌也可以通过代谢工程有效地生产丁酸。缺乏磷酸转乙酰酶和 CoA-转移酶编码基因的丙酮丁醇梭菌 CEKW 在 5.0、5.5、6.0 和 6.4 四个控制 pH 值的发酵中评估了其作为丁酸生产菌的潜力。在 pH 值为 6.0 的 CEKW 发酵中可以最好地生产丁酸,最高产量为 26.6 g/L,比野生型提高了 6.4 倍。然而,由于 CEKW 仍然具有溶剂生成能力,因此也产生了 3.6 g/L 的溶剂。因此,通过敲除编码醛/醇脱氢酶的 adhE1 基因进一步工程改造 CEKW,以防止溶剂生成。在 pH 值为 6.0 的 C. acetobutylicum HCEKW 的分批发酵中,丁酸产量增加到 30.8 g/L,丁酸与乙酸(BA/AA)的比例为 6.6 g/g,从 86.9 g/L 葡萄糖的生产率为 0.72 g/L/h,而几乎没有产生溶剂(仅 0.8 g/L 乙醇)。本研究中获得的丁酸产量、BA/AA 比和生产率是丙酮丁醇梭菌报道的最高值,BA/AA 比和生产率也与天然丁酸生产菌酪丁酸梭菌相当。这些结果表明,在丙酮丁醇梭菌中同时缺失 pta-ctfB-adhE1 导致代谢从两相到产酸发酵的转变,从而增强了丁酸的生产。

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