Liao Zhengping, Yang Xitong, Fu Hongxin, Wang Jufang
School of Biology and Biological Engineering, South China University of Technology, Guangzhou, 510006, China.
State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, Guangzhou, 510640, China.
AMB Express. 2019 Sep 10;9(1):142. doi: 10.1186/s13568-019-0874-6.
The co-factor NADH plays an important role in butanol biosynthesis. In this study, we found that aspartate could effectively improve the butanol production of Clostridium acetobutylicum ATCC 824. Further study showed that aspartate could be used as the precursor of NADH de novo synthesis in C. acetobutylicum ATCC 824. When 2 g/L aspartate was added, the transcription levels of essential genes (nadA, nadB and nadC) for NADH de novo synthesis were significantly higher than that of without aspartate addition. The levels of intracellular NAD, NADH, total NAD(H) and the ratio of NADH/NAD were also significantly increased, which were 63.9 ± 8.0%, 85.0 ± %, 77.7 ± 8.0% and 12.7 ± 2.9% higher than those of without aspartate addition, respectively. Furthermore, the butanol production was improved by overexpressing the NADH de novo synthesis genes, and the fermentation performance could be further enhanced by strengthening the VB1 biosynthesis and NADH de novo synthesis pathway simultaneously. As a result, the butanol titer of the engineered strain 824(thiCGE-nadC) reached 13.96 ± 0.11 g/L, 7.2 ± 0.4%, 18.1 ± 0.1%, 34.1 ± 0.1% higher than that of 824(thiCGE), 824(nadC) and the wild type strain, respectively. This study has a reference value for the NADH related researches of other microbes, and the engineering strategy used in this study provides a new idea for construction of efficient fuel-producing strains.
辅因子NADH在丁醇生物合成中起重要作用。在本研究中,我们发现天冬氨酸可有效提高丙酮丁醇梭菌ATCC 824的丁醇产量。进一步研究表明,天冬氨酸可作为丙酮丁醇梭菌ATCC 824中NADH从头合成的前体。添加2 g/L天冬氨酸时,NADH从头合成的必需基因(nadA、nadB和nadC)的转录水平显著高于未添加天冬氨酸时。细胞内NAD、NADH、总NAD(H)水平以及NADH/NAD比值也显著增加,分别比未添加天冬氨酸时高63.9±8.0%、85.0±%、77.7±8.0%和12.7±2.9%。此外,通过过表达NADH从头合成基因提高了丁醇产量,同时强化VB1生物合成和NADH从头合成途径可进一步提高发酵性能。结果,工程菌株824(thiCGE-nadC)的丁醇滴度分别比824(thiCGE)、824(nadC)和野生型菌株高7.2±0.4%、18.1±0.1%、34.1±0.1%,达到13.96±0.11 g/L。本研究对其他微生物的NADH相关研究具有参考价值,且本研究中使用的工程策略为构建高效产燃料菌株提供了新思路。