Effect of adaptive laboratory evolution of engineered Escherichia coli in acetate on the biosynthesis of succinic acid from glucose in two-stage cultivation

被引:10
作者
Jiang, Jiaping [1 ]
Luo, Yuanchan [1 ]
Fei, Peng [1 ]
Zhu, Zhengtong [1 ]
Peng, Jing [1 ]
Lu, Juefeng [1 ]
Zhu, Du [4 ]
Wu, Hui [1 ,2 ,3 ]
机构
[1] East China Univ Sci & Technol, Shanghai Frontiers Sci Ctr Optogenet Tech Cell Met, Sch Biotechnol, State Key Lab Bioreactor Engn, 130 Meilong Rd, Shanghai 200237, Peoples R China
[2] Dalian Univ Technol, Sch Bioengn, MOE Key Lab Biointelligent Mfg, Dalian, Peoples R China
[3] Shanghai Collaborat Innovat Ctr Biomfg Technol, 130 Meilong Rd, Shanghai 200237, Peoples R China
[4] Jiangxi Sci & Technol Normal Univ, Coll Life Sci, Key Lab Bioproc Engn Jiangxi Prov, Nanchang 330013, Peoples R China
基金
国家重点研发计划;
关键词
Adaptive laboratory evolution; E; coli; Acetate; Succinic acid; Two-stage fermentation; SUCCINICIPRODUCENS; FERMENTATION; INHIBITION; EXPRESSION; FIXATION; GLYCEROL;
D O I
10.1186/s40643-024-00749-5
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Escherichia coli MLB (MG1655 Delta pflB Delta ldhA), which can hardly grow on glucose with little succinate accumulation under anaerobic conditions. Two-stage fermentation is a fermentation in which the first stage is used for cell growth and the second stage is used for product production. The ability of glucose consumption and succinate production of MLB under anaerobic conditions can be improved significantly by using acetate as the solo carbon source under aerobic condition during the two-stage fermentation. Then, the adaptive laboratory evolution (ALE) of growing on acetate was applied here. We assumed that the activities of succinate production related enzymes might be further improved in this study. E. coli MLB46-05 evolved from MLB and it had an improved growth phenotype on acetate. Interestingly, in MLB46-05, the yield and tolerance of succinic acid in the anaerobic condition of two-stage fermentation were improved significantly. According to transcriptome analysis, upregulation of the glyoxylate cycle and the activity of stress regulatory factors are the possible reasons for the elevated yield. And the increased tolerance to acetate made it more tolerant to high concentrations of glucose and succinate. Finally, strain MLB46-05 produced 111 g/L of succinic acid with a product yield of 0.74 g/g glucose.
引用
收藏
页数:12
相关论文
共 48 条
[1]   Inhibition of Succinic Acid Production in Metabolically Engineered Escherichia Coli by Neutralizing Agent, Organic Acids, and Osmolarity [J].
Andersson, Christian ;
Helmerius, Jonas ;
Hodge, David ;
Berglund, Kris A. ;
Rova, Ulrika .
BIOTECHNOLOGY PROGRESS, 2009, 25 (01) :116-123
[2]   Genetic mechanisms underlying increased microalgal thermotolerance, maximal growth rate, and yield on light following adaptive laboratory evolution [J].
Barten, Robin ;
Van Workum, Dirk-Jan M. ;
de Bakker, Emma ;
Risse, Judith ;
Kleisman, Michelle ;
Navalho, Sofia ;
Smit, Sandra ;
Wijffels, Rene H. ;
Nijveen, Harm ;
Barbosa, Maria J. .
BMC BIOLOGY, 2022, 20 (01)
[3]   Comparative kinetic effects of Mn (II), Mg (II) and the ATP/ADP ratio on phosphoenolpyruvate carboxykinases from Anaerobiospirillum succiniciproducens and Saccharomyces cerevisiae [J].
Bazaes, Sergio ;
Toncio, Mauricio ;
Laivenieks, Maris ;
Zeikus, J. Gregory ;
Cardemil, Emilio .
PROTEIN JOURNAL, 2007, 26 (04) :265-269
[4]   Enzymatic degradation of poly (butylene succinate-co-hexamethylene succinate) [J].
Bi, Siwen ;
Tan, Bin ;
Soule, James L. ;
Sobkowicz, Margaret J. .
POLYMER DEGRADATION AND STABILITY, 2018, 155 :9-14
[5]   Kinetic modeling of succinate production from glucose and xylose by metabolically engineered Escherichia coli KJ12201 [J].
Chaleewong, Tassanon ;
Khunnonkwao, Panwana ;
Puchongkawarin, Channarong ;
Jantama, Kaemwich .
BIOCHEMICAL ENGINEERING JOURNAL, 2022, 185
[6]   Highly Selective Production of Succinic Acid by Metabolically Engineered Mannheimia succiniciproducens and Its Efficient Purification [J].
Choi, Sol ;
Song, Hyohak ;
Lim, Sung Won ;
Kim, Tae Yong ;
Ahn, Jung Ho ;
Lee, Jeong Wook ;
Lee, Moon-Hee ;
Lee, Sang Yup .
BIOTECHNOLOGY AND BIOENGINEERING, 2016, 113 (10) :2168-2177
[7]   Biorefineries for the production of top building block chemicals and their derivatives [J].
Choi, Sol ;
Song, Chan Woo ;
Shin, Jae Ho ;
Lee, Sang Yup .
METABOLIC ENGINEERING, 2015, 28 :223-239
[8]   Glucose can be transported and utilized in Escherichia coli by an altered or overproduced N-acetylglucosamine phosphotransferase system (PTS) [J].
Crigler, Jacob ;
Bannerman-Akwei, Laude ;
Cole, Ashley E. ;
Eiteman, Mark A. ;
Altman, Elliot .
MICROBIOLOGY-SGM, 2018, 164 (02) :163-172
[9]   Bio-based succinic acid: an overview of strain development, substrate utilization, and downstream purification [J].
Dai, Zhongxue ;
Guo, Feng ;
Zhang, Shangjie ;
Zhang, Wenming ;
Yang, Qiao ;
Dong, Weiliang ;
Jiang, Min ;
Ma, Jiangfeng ;
Xin, Fengxue .
BIOFUELS BIOPRODUCTS & BIOREFINING-BIOFPR, 2020, 14 (05) :965-985
[10]   Corynebacterium glutamicum CgynfM encodes a dicarboxylate transporter applicable to succinate production [J].
Fukui, Keita ;
Nanatani, Kei ;
Nakayama, Mayumi ;
Hara, Yoshihiko ;
Tokura, Mitsunori ;
Abe, Keietsu .
JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 2019, 127 (04) :465-471