Song Jia, Wang Jun, Wang Xinyu, Zhao Hang, Hu Tao, Feng Zhiwei, Lei Zhi, Li Weizhao, Zheng Yu, Wang Min
State Key Laboratory of Food Nutrition and Safety, Key Laboratory of Industrial Fermentation Microbiology, Ministry of Education, College of Biotechnology, Tianjin University of Science and Technology, Tianjin, China.
Tian Di No. 1 Beverage Inc., Jiangmen, China.
Front Bioeng Biotechnol. 2022 Mar 8;10:815614. doi: 10.3389/fbioe.2022.815614. eCollection 2022.
Energy metabolism is important for cell growth and tolerance against environment stress. In acetic acid fermentation by , the correlation coefficients of acid production rate with energy charge and ATP content were 0.9981 and 0.9826, respectively. The main energy metabolism pathway, including glycolysis pathway, TCA cycle, ethanol oxidation, pentose phosphate pathway, and ATP production, was constructed by transcriptome analysis. The effects of fermentation conditions, including dissolved oxygen, initial acetic acid concentration, and total concentration, on acetic acid fermentation and energy metabolism of were analyzed by using the RT-PCR method. The results showed the high energy charge inhibited glucose catabolism, and associated with the high ethanol oxidation rate. Consequently, a virtuous circle of increased ethanol oxidation, increased energy generation, and acetic acid tolerance was important for improving acetic acid fermentation.
能量代谢对于细胞生长和抵御环境压力至关重要。在[具体微生物名称]进行的乙酸发酵中,产酸速率与能荷及ATP含量的相关系数分别为0.9981和0.9826。通过转录组分析构建了包括糖酵解途径、三羧酸循环、乙醇氧化、磷酸戊糖途径和ATP产生在内的主要能量代谢途径。利用RT-PCR方法分析了发酵条件(包括溶解氧、初始乙酸浓度和总浓度)对[具体微生物名称]乙酸发酵和能量代谢的影响。结果表明,高能荷抑制葡萄糖分解代谢,并与高乙醇氧化速率相关。因此,乙醇氧化增加、能量产生增加和乙酸耐受性增强的良性循环对于改善乙酸发酵很重要。