Metabolic engineering of Escherichia coli into a versatile glycosylation platform: production of bio-active quercetin glycosides

被引:60
作者
De Bruyn, Frederik [1 ]
Van Brempt, Maarten [1 ]
Maertens, Jo [1 ]
Van Bellegem, Wouter [1 ]
Duchi, Dries [1 ]
De Mey, Marjan [1 ]
机构
[1] Univ Ghent, Ctr Expertise Ind Biotechnol & Biocatalysis, Dept Biochem & Microbial Technol, B-9000 Ghent, Belgium
来源
MICROBIAL CELL FACTORIES | 2015年 / 14卷
关键词
Galactosylation; Rhamnosylation; Glycosylation; Hyperoside; Quercitrin; Escherichia coli W; Metabolic engineering; Flavonoids; PLANT-CELL CULTURES; IN-VITRO; ANTIINFLAMMATORY ACTIVITY; REGIOSELECTIVE SYNTHESIS; HYPERICUM-PERFORATUM; MAJOR DETERMINANT; OXIDATIVE DAMAGE; SUGAR MOIETY; FLAVONOIDS; HYPEROSIDE;
D O I
10.1186/s12934-015-0326-1
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: Flavonoids are bio-active specialized plant metabolites which mainly occur as different glycosides. Due to the increasing market demand, various biotechnological approaches have been developed which use Escherichia coli as a microbial catalyst for the stereospecific glycosylation of flavonoids. Despite these efforts, most processes still display low production rates and titers, which render them unsuitable for large-scale applications. Results: In this contribution, we expanded a previously developed in vivo glucosylation platform in E. coli W, into an efficient system for selective galactosylation and rhamnosylation. The rational of the novel metabolic engineering strategy constitutes of the introduction of an alternative sucrose metabolism in the form of a sucrose phosphorylase, which cleaves sucrose into fructose and glucose 1-phosphate as precursor for UDP-glucose. To preserve these intermediates for glycosylation purposes, metabolization reactions were knocked-out. Due to the pivotal role of UDP-glucose, overexpression of the interconverting enzymes galE and MUM4 ensured the formation of both UDP-galactose and UDP-rhamnose, respectively. By additionally supplying exogenously fed quercetin and overexpressing a flavonol galactosyltransferase (F3GT) or a rhamnosyltransferase (RhaGT), 0.94 g/L hyperoside (quercetin 3-O-galactoside) and 1.12 g/L quercitrin (quercetin 3-O-rhamnoside) could be produced, respectively. In addition, both strains showed activity towards other promising dietary flavonols like kaempferol, fisetin, morin and myricetin. Conclusions: Two E. coli W mutants were engineered that could effectively produce the bio-active flavonol glycosides hyperoside and quercitrin starting from the cheap substrates sucrose and quercetin. This novel fermentation-based glycosylation strategy will allow the economically viable production of various glycosides.
引用
收藏
页数:12
相关论文
共 68 条
  • [1] Dietary flavonols: Chemistry, food content, and metabolism
    Aherne, SA
    O'Brien, NM
    [J]. NUTRITION, 2002, 18 (01) : 75 - 81
  • [2] Accessing select properties of the electron with ImageJ: an open-source image-processing paradigm
    Alam, Junaid
    Shaheen, Amrozia
    Anwar, Muhammad Sabieh
    [J]. EUROPEAN JOURNAL OF PHYSICS, 2014, 35 (01)
  • [3] The genome sequence of E. coli W (ATCC 9637): comparative genome analysis and an improved genome-scale reconstruction of E. coli
    Archer, Colin T.
    Kim, Jihyun F.
    Jeong, Haeyoung
    Park, Jin Hwan
    Vickers, Claudia E.
    Lee, Sang Yup
    Nielsen, Lars K.
    [J]. BMC GENOMICS, 2011, 12
  • [4] The type of sugar moiety is a major determinant of the small intestinal uptake and subsequent biliary excretion of dietary quercetin glycosides
    Arts, ICW
    Sesink, ALA
    Faassen-Peters, M
    Hollman, PCH
    [J]. BRITISH JOURNAL OF NUTRITION, 2004, 91 (06) : 841 - 847
  • [5] Quercitrin a bioflavonoid improves the antioxidant status in streptozotocin: induced diabetic rat tissues
    Babujanarthanam, Ranganathan
    Kavitha, Purushothaman
    Rao, U. S. Mahadeva
    Pandian, Moses Rajasekara
    [J]. MOLECULAR AND CELLULAR BIOCHEMISTRY, 2011, 358 (1-2) : 121 - 129
  • [6] Baranowska I, 2011, J AOAC INT, V94, P786
  • [7] Anything plants can grow ...
    Barras, Colin
    [J]. NEW SCIENTIST, 2014, 222 (2964) : 34 - 37
  • [8] Bertoli A, 2010, ADV EXP MED BIOL, V698, P250
  • [9] Regio- and stereoselective synthesis of the major metabolite of quercetin, quercetin-3-O-β-D-glucuronide
    Bouktaib, M
    Atmani, A
    Rolando, C
    [J]. TETRAHEDRON LETTERS, 2002, 43 (35) : 6263 - 6266
  • [10] Glycosyltransferases: managers of small molecules
    Bowles, D
    Isayenkova, J
    Lim, EK
    Poppenberger, B
    [J]. CURRENT OPINION IN PLANT BIOLOGY, 2005, 8 (03) : 254 - 263