Stepwise increase of spinosad production in Saccharopolyspora spinosa by metabolic engineering

被引:21
作者
Xue, Chaoyou
Duan, Yuejiao
Zhao, Fanglong
Lu, Wenyu [1 ]
机构
[1] Tianjin Univ, Dept Biol Engn, Tianjin 300072, Peoples R China
基金
高等学校博士学科点专项科研基金;
关键词
Biosynthesis; Fermentation; Recombinant DNA; Enzymes; Tune; Spinosad; BIOSYNTHETIC GENE-CLUSTER; RHAMNOSE; PATHWAY; ACID;
D O I
10.1016/j.bej.2013.01.007
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
Rational metabolic and cellular engineering approaches are useful in improving strain performance. In the last years, several studies not only clarified the biosynthetic pathway of spinosad, but also provided useful information of metabolic restrictions in the spinosyn biosynthetic pathway. However, these studies overlooked the problem that the spinosyn biosynthetic pathway was unbalanced: the expression of six genes in the spinosyn biosynthetic pathway was insufficient; Saccharopolyspora spinosa accumulated useless compounds because of insufficient expression of SpnK. So a rational strain improvement strategy was developed to tune the unbalanced spinosyn biosynthetic pathway. First, we overexpressed spnK to increase the amount of the flux from rhamnosylated aglycone to pseudoaglycones (PSA). Then six genes (spnP, spnO, spnN, spnQ, spnR, and spnS) involved in forosamine biosynthesis and spnK were co-expressed in S. spinosa LU102 to convert the accumulated PSA to spinosad. The yield of spinosad in S. spinosa LU102 was 214 mg/L, which was 2.6-fold higher than that in the wild-type S. spinosa (82 mg/L). Finally, spinosad production in the tuned S. spinosa LU104 was further increased to 405 mg/L, which was a 5.0-fold enhancement compared with the wild-type S. spinosa, by duplicating spnP, spnO, spnN, spnQ, spnR, spnS, spnK, gtt, gdh and kre genes. (C) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:90 / 95
页数:6
相关论文
共 30 条
  • [1] Conversion of spinosyn A and spinosyn D to their respective 9- and 17-pseudoaglycones and their aglycones
    Creemer, LC
    Kirst, HA
    Paschal, JW
    [J]. JOURNAL OF ANTIBIOTICS, 1998, 51 (08) : 795 - 800
  • [2] ANOMALOUS GEOCHEMICAL SIGNALS FROM PHOSPHATIC MIDDLE CAMBRIAN ROCKS IN THE SOUTHERN GEORGINA BASIN, AUSTRALIA
    DONNELLY, TH
    SHERGOLD, JH
    SOUTHGATE, PN
    [J]. SEDIMENTOLOGY, 1988, 35 (04) : 549 - 570
  • [3] Hopwood D.A., 1985, GENETIC MANIPULATION
  • [4] Recent advances in the biochemistry of spinosyns
    Huang, Ke-xue
    Xia, Liqiu
    Zhang, Youming
    Ding, Xuezhi
    Zahn, James A.
    [J]. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2009, 82 (01) : 13 - 23
  • [5] Structural Studies of the Spinosyn Rhamnosyltransferase, SpnG
    Isiorho, Eta A.
    Liu, Hung-wen
    Keatinge-Clay, Adrian T.
    [J]. BIOCHEMISTRY, 2012, 51 (06) : 1213 - 1222
  • [6] Enzyme-catalysed [4+2] cycloaddition is a key step in the biosynthesis of spinosyn A
    Kim, Hak Joong
    Ruszczycky, Mark W.
    Choi, Sei-hyun
    Liu, Yung-nan
    Liu, Hung-wen
    [J]. NATURE, 2011, 473 (7345) : 109 - 112
  • [7] Biosynthesis of Spinosyn in Saccharopolyspora spinosa: Synthesis of Permethylated Rhamnose and Characterization of the Functions of SpnH, Spnl, and SpnK
    Kim, Hak Joong
    White-Phillip, Jess A.
    Ogasawara, Yasushi
    Shin, Nara
    Isiorho, Eta A.
    Liu, Hung-wen
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (09) : 2901 - +
  • [8] The spinosyn family of insecticides: realizing the potential of natural products research
    Kirst, Herbert A.
    [J]. JOURNAL OF ANTIBIOTICS, 2010, 63 (03) : 101 - 111
  • [9] Systems biotechnology for strain improvement
    Lee, SY
    Lee, DY
    Kim, TY
    [J]. TRENDS IN BIOTECHNOLOGY, 2005, 23 (07) : 349 - 358
  • [10] Genes for the biosynthesis of spinosyns:: applications for yield improvement in Saccharopolyspora spinosa
    Madduri, K
    Waldron, C
    Matsushima, P
    Broughton, MC
    Crawford, K
    Merlo, DJ
    Baltz, RH
    [J]. JOURNAL OF INDUSTRIAL MICROBIOLOGY & BIOTECHNOLOGY, 2001, 27 (06) : 399 - 402