Characterization of Panax ginseng UDP-Glycosyltransferases Catalyzing Protopanaxatriol and Biosyntheses of Bioactive Ginsenosides F1 and Rh1 in Metabolically Engineered Yeasts

被引:148
作者
Wei, Wei [1 ]
Wang, Pingping [1 ]
Wei, Yongjun [1 ]
Liu, Qunfang [2 ]
Yang, Chengshuai [1 ]
Zhao, Guoping [1 ]
Yue, Jianmin [2 ]
Yan, Xing [1 ]
Zhou, Zhihua [1 ]
机构
[1] Chinese Acad Sci, Shanghai Inst Biol Sci, Inst Plant Physiol & Ecol, CAS Key Lab Synthet Biol, Shanghai 200032, Peoples R China
[2] Chinese Acad Sci, Shanghai Inst Biol Sci, Inst Mat Med, State Key Lab Drug Res, Shanghai 201203, Peoples R China
关键词
UDP-glycosyltransferase; triterpenoids; protopanaxatriol; ginsenoside F1; ginsenoside Rh1; Panax ginseng; MEDICAGO-TRUNCATULA; CRYSTAL-STRUCTURES; ANTHOCYANIN BIOSYNTHESIS; ARABIDOPSIS-THALIANA; CLITORIA-TERNATEA; DAMMARENEDIOL-II; GLUCOSYLTRANSFERASE; TRANSCRIPTOME; SYNTHASE; REVEALS;
D O I
10.1016/j.molp.2015.05.010
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Ginsenosides, the main pharmacologically active natural compounds in ginseng (Panax ginseng), are mostly the glycosylated products of protopanaxadiol (PPD) and protopanaxatriol (PPT). No uridine diphosphate glycosyltransferase (UGT), which catalyzes PPT to produce PPT-type ginsenosides, has yet been reported. Here, we show that UGTPg1, which has been demonstrated to regio-specifically glycosylate the C20-OH of PPD, also specifically glycosylates the C20-OH of PPT to produce bioactive ginsenoside F1. We report the characterization of four novel UGT genes isolated from P. ginseng, sharing high deduced amino acid identity (>84%) with UGTPg1. We demonstrate that UGTPg100 specifically glycosylates the C6-OH of PPT to produce bioactive ginsenoside Rh1, and UGTPg101 catalyzes PPT to produce F1, followed by the generation of ginsenoside Rg1 from F1. However, UGTPg102 and UGTPg103 were found to have no detectable activity on PPT. Through structural modeling and site-directed mutagenesis, we identified several key amino acids of these UGTs that may play important roles in determining their activities and substrate regio-specificities. Moreover, we constructed yeast recombinants to biosynthesize F1 and Rh1 by introducing the genetically engineered PPT-producing pathway and UGTPg1 or UGTPg100. Our study reveals the possible biosynthetic pathways of PPT-type ginsenosides in Panax plants, and provides a sound manufacturing approach for bioactive PPT-type ginsenosides in yeast via synthetic biology strategies.
引用
收藏
页码:1412 / 1424
页数:13
相关论文
共 40 条
[1]   Genomics-based selection and functional characterization of triterpene glycosyltransferases from the model legume Medicago truncatula [J].
Achnine, L ;
Huhman, DV ;
Farag, MA ;
Sumner, LW ;
Blount, JW ;
Dixon, RA .
PLANT JOURNAL, 2005, 41 (06) :875-887
[2]   The 'evolvability' of promiscuous protein functions [J].
Aharoni, A ;
Gaidukov, L ;
Khersonsky, O ;
Gould, SM ;
Roodveldt, C ;
Tawfik, DS .
NATURE GENETICS, 2005, 37 (01) :73-76
[3]   UDP-Glycosyltransferases from the UGT73C Subfamily in Barbarea vulgaris Catalyze Sapogenin 3-O-Glucosylation in Saponin-Mediated Insect Resistance [J].
Augustin, Jorg M. ;
Drok, Sylvia ;
Shinoda, Tetsuro ;
Sanmiya, Kazutsuka ;
Nielsen, Jens Kvist ;
Khakimov, Bekzod ;
Olsen, Carl Erik ;
Hansen, Esben Halkjaer ;
Kuzina, Vera ;
Ekstrom, Claus Thorn ;
Hauser, Thure ;
Bak, Soren .
PLANT PHYSIOLOGY, 2012, 160 (04) :1881-1895
[4]   Glycosyltransferases of lipophilic small molecules [J].
Bowles, Dianna ;
Lim, Eng-Kiat ;
Poppenberger, Brigitte ;
Vaistij, Fabian E. .
ANNUAL REVIEW OF PLANT BIOLOGY, 2006, 57 :567-597
[5]   Characterization and engineering of the bifunctional N- and O-glucosyltransferase involved in xenobiotic metabolism in plants [J].
Brazier-Hicks, Melissa ;
Offen, Wendy A. ;
Gershater, Markus C. ;
Revett, Timothy J. ;
Lim, Eng-Kiat ;
Bowles, Dianna J. ;
Davies, Gideon J. ;
Edwards, Robert .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (51) :20238-20243
[6]   454 EST analysis detects genes putatively involved in ginsenoside biosynthesis in Panax ginseng [J].
Chen, S. ;
Luo, H. ;
Li, Y. ;
Sun, Y. ;
Wu, Q. ;
Niu, Y. ;
Song, J. ;
Lv, A. ;
Zhu, Y. ;
Sun, C. ;
Steinmetz, A. ;
Qian, Z. .
PLANT CELL REPORTS, 2011, 30 (09) :1593-1601
[7]  
Christensen LP, 2009, ADV FOOD NUTR RES, V55, P1, DOI 10.1016/S1043-4526(08)00401-4
[8]   Biochemical and molecular characterization of a novel UDP-glucose:anthocyanin 3′-O-glucosyltransferase, a key enzyme for blue anthocyanin biosynthesis, from gentian [J].
Fukuchi-Mizutani, M ;
Okuhara, H ;
Fukui, Y ;
Nakao, M ;
Katsumoto, Y ;
Yonekura-Sakakibara, K ;
Kusumi, T ;
Hase, T ;
Tanaka, Y .
PLANT PHYSIOLOGY, 2003, 132 (03) :1652-1663
[9]   Expression and RNA interference-induced silencing of the dammarenediol synthase gene in Panax ginseng [J].
Han, Jung Yeon ;
Kwon, Yong Soo ;
Yang, Deok Chun ;
Jung, Young Rim ;
Choi, Yong Eui .
PLANT AND CELL PHYSIOLOGY, 2006, 47 (12) :1653-1662
[10]   Cytochrome P450 CYP716A53v2 Catalyzes the Formation of Protopanaxatriol from Protopanaxadiol During Ginsenoside Biosynthesis in Panax Ginseng [J].
Han, Jung-Yeon ;
Hwang, Hwan-Su ;
Choi, Su-Wan ;
Kim, Hyun-Jung ;
Choi, Yong-Eui .
PLANT AND CELL PHYSIOLOGY, 2012, 53 (09) :1535-1545