Metabolic engineering of Corynebacterium glutamicum for highly selective production of 5-hydroxyvaleric acid

被引:0
作者
Sohn, Yu Jung [1 ]
Kim, Hee Taek [2 ]
Kang, Minsoo [3 ]
Son, Jina [1 ]
Park, Kyungmoon [3 ]
Jeong, Ki Jun [4 ]
Lee, Sang Yup [5 ,6 ]
Joo, Jeong Chan [7 ]
Park, Si Jae [1 ]
机构
[1] Ewha Womans Univ, Dept Chem Engn & Mat Sci, Grad Program Syst Hlth Sci & Engn, Seoul 03760, South Korea
[2] Chungnam Natl Univ, Coll Agr & Life Sci, Dept Food Sci & Technol, Daejeon 34134, South Korea
[3] Hongik Univ, Dept Biol & Chem Engn, Sejong 30016, South Korea
[4] Korea Adv Inst Sci & Technol KAIST, Dept Chem & Biomol Engn, Daejeon 34141, South Korea
[5] Korea Adv Inst Sci & Technol KAIST, Dept Chem & Biomol Engn BK21 Four, Metab & Biomol Engn Natl Res Lab, Syst Metab Engn & Syst Healthcare Cross Generat Co, Daejeon 34141, South Korea
[6] Korea Adv Inst Sci & Technol, KAIST Inst Artificial Intelligence, Bioproc Engn Res Ctr, Ctr Synthet Biol,KAIST Inst BioCentury, Daejeon 34141, South Korea
[7] Kyung Hee Univ, Dept Chem Engn, Yongin 17104, South Korea
基金
新加坡国家研究基金会;
关键词
5-Hydroxyvaleric acid; delta-valerolactone; l -Lysine degradation pathway; Glutaric acid recycling; Corynebacterium glutamicum; Sustainable bioproduction; ESCHERICHIA-COLI; GLUTARIC ACID; L-LYSINE; 5-AMINOVALERATE; OPTIMIZATION;
D O I
10.1016/j.ymben.2025.03.002
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
The biosynthesis of 5-hydroxyvaleric acid (5-HV) from glucose via the l-lysine degradation pathway cocurrently generates by-products, including l-lysine, 5-aminovaleric acid (5-AVA), and glutaric acid (GTA), which are closely interconnected with the 5-HV biosynthesis pathway. This study focuses on developing a highly selective 5-HV production system in Corynebacterium glutamicum. Initial strategies, such as using sorbitol as a co-substrate, deleting the endogenous GTA biosynthesis pathway, and incorporating a GTA recycling system, were insufficient to achieve selectivity. To address this, a combination of strategies was implemented, including deletion of the endogenous GTA biosynthesis pathway, incorporation of a GTA recycling pathway, removal of the l-lysine exporter gene (lysE), and integration of a l-lysine conversion module. These modifications synergistically enhanced 5-HV selectivity. The final engineered strain, which lacked lysE and gabD2 genes and overexpressed the 5-HV biosynthesis and GTA recycling modules, achieved 88.23 g/L of 5-HV in fed-batch fermentation. Byproduct levels were significantly reduced to 3.28 g/L of GTA, 1.16 g/L of 5-AVA, and no detectable l-lysine. With this highly selective 5-HV biosynthesis system, delta-valerolactone (DVL) was synthesized via acid treatment of microbially produced 5-HV, achieving a 65% conversion efficiency. This approach presents a more environmentally friendly and sustainable method for producing DVL, a valuable C5 solvent with industrial applications.
引用
收藏
页码:33 / 42
页数:10
相关论文
共 38 条
[1]   Construction of a Vitreoscilla Hemoglobin Promoter-Based Tunable Expression System for Corynebacterium glutamicum [J].
Baritugo, Kei-Anne ;
Kim, Hee Taek ;
Rhie, Mi Na ;
Jo, Seo Young ;
Khang, Tae Uk ;
Kang, Kyoung Hee ;
Song, Bong Keun ;
Lee, Binna ;
Song, Jae Jun ;
Choi, Jong Hyun ;
Lee, Dae-Hee ;
Joo, Jeong Chan ;
Park, Si Jae .
CATALYSTS, 2018, 8 (11)
[2]   From zero to hero-Design-based systems metabolic engineering of Corynebacterium glutamicum for L-lysine production [J].
Becker, Judith ;
Zelder, Oskar ;
Haefner, Stefan ;
Schroeder, Hartwig ;
Wittmann, Christoph .
METABOLIC ENGINEERING, 2011, 13 (02) :159-168
[3]   Identification and analysis of a glutaryl-CoA dehydrogenase-encoding gene and its cognate transcriptional regulator from Azoarcus sp CIB [J].
Blazquez, Blas ;
Carmona, Manuel ;
Garcia, Jose Luis ;
Diaz, Eduardo .
ENVIRONMENTAL MICROBIOLOGY, 2008, 10 (02) :474-482
[4]   Metabolic engineering of industrial platform microorganisms for biorefinery applications - Optimization of substrate spectrum and process robustness by rational and evolutive strategies [J].
Buschke, Nele ;
Schaefer, Rudolf ;
Becker, Judith ;
Wittmann, Christoph .
BIORESOURCE TECHNOLOGY, 2013, 135 :544-554
[5]   Metabolic Engineering of Escherichia coli for De Novo Production of 1,5-Pentanediol from Glucose [J].
Cen, Xuecong ;
Liu, Yu ;
Chen, Bo ;
Liu, Dehua ;
Chen, Zhen .
ACS SYNTHETIC BIOLOGY, 2021, 10 (01) :192-203
[6]   Metabolic engineering of Escherichia coli for the production of 1-propanol [J].
Choi, Yong Jun ;
Park, Jin Hwan ;
Kim, Tae Yong ;
Lee, Sang Yup .
METABOLIC ENGINEERING, 2012, 14 (05) :477-486
[7]   Metabolic engineering of Corynebacterium glutamicum for the high-level production of valerolactam, a nylon-5 monomer [J].
Han, Taehee ;
Lee, Sang Yup .
METABOLIC ENGINEERING, 2023, 79 :78-85
[8]   Glutaric acid production by systems metabolic engineering of an L-lysine-overproducing Corynebacterium glutamicum [J].
Han, Taehee ;
Kim, Gi Bae ;
Lee, Sang Yup .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2020, 117 (48) :30328-30334
[9]   Vibrio species as next-generation chassis for accelerated synthetic biology [J].
Hong, Changhwan ;
Kim, Yoojin ;
Lee, Hyunjin ;
Yun, Saebom ;
Lim, Hyun Gyu ;
Yang, Jina ;
Jang, Sungho .
BIOTECHNOLOGY AND BIOPROCESS ENGINEERING, 2024, 29 (02) :241-253
[10]   Importance of redox balance on the production of succinic acid by metabolically engineered Escherichia coli [J].
Hong, SH ;
Lee, SY .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2002, 58 (03) :286-290