Production of hydroxycinnamoyl-shikimates and chlorogenic acid in Escherichia coli: production of hydroxycinnamic acid conjugates

被引:44
作者
Kim, Bong-Gyu [1 ]
Jung, Woo Dam [1 ]
Mok, Hyejung [1 ]
Ahn, Joong-Hoon [1 ]
机构
[1] Konkuk Univ, Bio Mol Informat Ctr, Dept Biosci & Biotechnol, Seoul 143701, South Korea
基金
新加坡国家研究基金会;
关键词
Chlorogenic acid; Hydroxycinnamic acid; Hydroxycinnamate-CoA quinate transferase; Hydroxycinnamate-CoA shikimate transferase; PHENYLPROPANOID BIOSYNTHESIS; ENZYMATIC-SYNTHESIS; PURIFICATION; METABOLISM; COENZYME; GENES; YDIB;
D O I
10.1186/1475-2859-12-15
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
Background: Hydroxycinnamates (HCs) are mainly produced in plants. Caffeic acid (CA), p-coumaric acid (PA), ferulic acid (FA) and sinapic acid (SA) are members of the HC family. The consumption of HC by human might prevent cardiovascular disease and some types of cancer. The solubility of HCs is increased through thioester conjugation to various compounds such as quinic acid, shikimic acid, malic acid, anthranilic acid, and glycerol. Although hydroxycinnamate conjugates can be obtained from diverse plant sources such as coffee, tomato, potato, apple, and sweet potato, some parts of the world have limited availability to these compounds. Thus, there is growing interest in producing HC conjugates as nutraceutical supplements. Results: Hydroxycinnamoyl transferases (HCTs) including hydroxycinnamate-CoA shikimate transferase (HST) and hydroxycinnamate-CoA quinate transferase (HQT) were co-expressed with 4-coumarateCoA:ligase (4CL) in Escherichia coli cultured in media supplemented with HCs. Two hydroxycinnamoyl conjugates, p-coumaroyl shikimates and chlorogenic acid, were thereby synthesized. Total 29.1 mg/L of four different p-coumaroyl shikimates (3-p-coumaroyl shikimate, 4-p-coumaroyl shikimate, 3,4-di-p-coumaroyl shikimate, 3,5-di-p-coumaroyl shikimate, and 4,5-di-p-coumaroyl shikimate) was obtained and 16 mg/L of chlorogenic acid was synthesized in the wild type E. coli strain. To increase the concentration of endogenous acceptor substrates such as shikimate and quinate, the shikimate pathway in E. coli was engineered. A E. coli aroL and aroK gene were mutated and the resulting mutants were used for the production of p-coumaroyl shikimate. An E. coli aroD mutant was used for the production of chlorogenic acid. We also optimized the vector and cell concentration optimization. Conclusions: To produce p-coumaroyl-shikimates and chlorogenic acid in E. coli, several E. coli mutants (an aroD mutant for chlorogenic acid production; an aroL, aroK, and aroKL mutant for p-coumaroyl-shikimates production) were made and each mutant was tested using an optimized construct. Using this strategy, we produced 235 mg/L of p-coumaroyl-shikimates and 450 mg/L of chlorogenic acid.
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页数:11
相关论文
共 36 条
[21]   Combinatorial Biosynthesis of Non-bacterial and Unnatural Flavonoids, Stilbenoids and Curcuminoids by Microorganisms [J].
Horinouchi, Sueharu .
JOURNAL OF ANTIBIOTICS, 2008, 61 (12) :709-728
[22]   Towards bacterial strains overproducing L-tryptophan and other aromatics by metabolic engineering [J].
Ikeda, M .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2006, 69 (06) :615-626
[23]   Profile and Characterization of the Chlorogenic Acids in Green Robusta Coffee Beans by LC-MSn: Identification of Seven New Classes of Compounds [J].
Jaiswal, Rakesh ;
Patras, Maria Alexandra ;
Eravuchira, Pinkie Jacob ;
Kuhnert, Nikolai .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2010, 58 (15) :8722-8737
[24]   Modular Engineering of L-Tyrosine Production in Escherichia coli [J].
Juminaga, Darmawi ;
Baidoo, Edward E. K. ;
Redding-Johanson, Alyssa M. ;
Batth, Tanveer S. ;
Burd, Helcio ;
Mukhopadhyay, Aindrila ;
Petzold, Christopher J. ;
Keasling, Jay D. .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2012, 78 (01) :89-98
[25]   Characterization of Hydroxycinnamoyl-coenzyme A Shikimate Hydroxycinnamoyltransferase from Populus euramericana [J].
Kim, Bong-Gyu ;
Kim, In-Ah ;
Ahn, Joong-Hoon .
JOURNAL OF THE KOREAN SOCIETY FOR APPLIED BIOLOGICAL CHEMISTRY, 2011, 54 (05) :817-821
[26]   Metabolic engineering for microbial production of shikimic acid [J].
Krämer, M ;
Bongaerts, J ;
Bovenberg, R ;
Kremer, S ;
Müller, U ;
Orf, S ;
Wubbolts, M ;
Raeven, L .
METABOLIC ENGINEERING, 2003, 5 (04) :277-283
[27]  
Lee YJ, 2007, B KOREAN CHEM SOC, V28, P365
[28]   Site-directed mutagenesis of the active site region in the quinate/shikimate 5-dehydrogenase YdiB of Escherichia coli [J].
Lindner, HA ;
Nadeau, G ;
Matte, A ;
Michel, G ;
Ménard, R ;
Cygler, M .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (08) :7162-7169
[29]   Structures of shikimate dehydrogenase AroE and its paralog YdiB -: A common structural framework for different activities [J].
Michel, G ;
Roszak, AW ;
Sauvé, V ;
Maclean, J ;
Matte, A ;
Coggins, JR ;
Cygler, M ;
Lapthorn, AJ .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (21) :19463-19472
[30]   Engineering plants with increased levels of the antioxidant chlorogenic acid [J].
Niggeweg, R ;
Michael, AJ ;
Martin, C .
NATURE BIOTECHNOLOGY, 2004, 22 (06) :746-754