Metabolic engineering of proanthocyanidin production by repressing the isoflavone pathways and redirecting anthocyanidin precursor flux in legume

被引:77
作者
Li, Penghui [1 ]
Dong, Qiang [1 ]
Ge, Shujun [2 ,3 ]
He, Xianzhi [3 ,4 ]
Verdier, Jerome [5 ]
Li, Dongqin [1 ]
Zhao, Jian [1 ]
机构
[1] Huazhong Agr Univ, Natl Key Lab Crop Genet Improvement, Wuhan, Peoples R China
[2] Agr Univ Hebei, Coll Agron, Baoding, Peoples R China
[3] Samuel Roberts Noble Fdn Inc, Div Plant Biol, Ardmore, OK USA
[4] N Carolina State Univ, Dept Plant & Microbial Biol, Raleigh, NC 27695 USA
[5] Chinese Acad Sci, Shanghai Inst Biol Sci, Shanghai Ctr Plant Stress Biol, Shanghai, Peoples R China
基金
美国农业部;
关键词
legume; proanthocyanidin; isoflavone; transcription factor; metabolic engineering; MEDICAGO-TRUNCATULA; ACCUMULATING CELLS; GENE-EXPRESSION; DOMAIN PROTEIN; BIOSYNTHESIS; ARABIDOPSIS; ENCODES; TRICHOME; BANYULS; ACTS;
D O I
10.1111/pbi.12524
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
MtPAR is a proanthocyanidin (PA) biosynthesis regulator; the mechanism underlying its promotion of PA biosynthesis is not fully understood. Here, we showed that MtPAR promotes PA production by a direct repression of biosynthesis of isoflavones, the major flavonoids in legume, and by redirecting immediate precursors, such as anthocyanidins, flux into PA pathway. Ectopic expression of MtPAR repressed isoflavonoid production by directly binding and suppressing isoflavone biosynthetic genes such as isoflavone synthase (IFS). Meanwhile, MtPAR up-regulated PA-specific genes and decreased the anthocyanin levels without altering the expression of anthocyanin biosynthetic genes. MtPAR may shift the anthocyanidin precursor flux from anthocyanin pathway to PA biosynthesis. MtPAR complemented PA-deficient phenotype of Arabidopsis tt2 mutant seeds, demonstrating their similar action on PA production. We showed the direct interactions between MtPAR, MtTT8 and MtWD40-1 proteins from Medicago truncatula and Glycine max, to form a ternary complex to trans-activate PA-specific ANR gene. Finally, MtPAR expression in alfalfa (Medicago sativa) hairy roots and whole plants only promoted the production of small amount of PAs, which was significantly enhanced by co-expression of MtPAR and MtLAP1. Transcriptomic and metabolite profiling showed an additive effect between MtPAR and MtLAP1 on the production of PAs, supporting that efficient PA production requires more anthocyanidin precursors. This study provides new insights into the role and mechanism of MtPAR in partitioning precursors from isoflavone and anthocyanin pathways into PA pathways for a specific promotion of PA production. Based on this, a strategy by combining MtPAR and MtLAP1 co-expression to effectively improve metabolic engineering performance of PA production in legume forage was developed.
引用
收藏
页码:1604 / 1618
页数:15
相关论文
共 52 条
[1]   Anthocyanin leaf markings are regulated by a family of R2R3-MYB genes in the genus Trifolium [J].
Albert, Nick W. ;
Griffiths, Andrew G. ;
Cousins, Greig R. ;
Verry, Isabelle M. ;
Williams, Warren M. .
NEW PHYTOLOGIST, 2015, 205 (02) :882-893
[2]   A Conserved Network of Transcriptional Activators and Repressors Regulates Anthocyanin Pigmentation in Eudicots [J].
Albert, Nick W. ;
Davies, Kevin M. ;
Lewis, David H. ;
Zhang, Huaibi ;
Montefiori, Mirco ;
Brendolise, Cyril ;
Boase, Murray R. ;
Ngo, Hanh ;
Jameson, Paula E. ;
Schwinn, Kathy E. .
PLANT CELL, 2014, 26 (03) :962-980
[3]   STUDIES ON A STRINGENT COMPONENTS IN LEGUME SEEDS .1. OCCURRENCE OF ASTRINGENT OLIGOMERIC PROANTHOCYANIDINS IN LEGUME SEEDS [J].
ARIGA, T ;
ASAO, Y ;
SUGIMOTO, H ;
YOKOTSUKA, T .
AGRICULTURAL AND BIOLOGICAL CHEMISTRY, 1981, 45 (12) :2705-2708
[4]   TT2, TT8, and TTG1 synergistically specify the expression of BANYULS and proanthocyanidin biosynthesis in Arabidopsis thaliana [J].
Baudry, A ;
Heim, MA ;
Dubreucq, B ;
Caboche, M ;
Weisshaar, B ;
Lepiniec, L .
PLANT JOURNAL, 2004, 39 (03) :366-380
[5]   A gene expression atlas of the model legume Medicago truncatula [J].
Benedito, Vagner A. ;
Torres-Jerez, Ivone ;
Murray, Jeremy D. ;
Andriankaja, Andry ;
Allen, Stacy ;
Kakar, Klementina ;
Wandrey, Maren ;
Verdier, Jerome ;
Zuber, Helene ;
Ott, Thomas ;
Moreau, Sandra ;
Niebel, Andreas ;
Frickey, Tancred ;
Weiller, Georg ;
He, Ji ;
Dai, Xinbin ;
Zhao, Patrick X. ;
Tang, Yuhong ;
Udvardi, Michael K. .
PLANT JOURNAL, 2008, 55 (03) :504-513
[6]   Agrobacterium rhizogenes-transformed roots of Medicago truncatula for the study of nitrogen-fixing and endomycorrhizal symbiotic associations [J].
Boisson-Dernier, A ;
Chabaud, M ;
Garcia, F ;
Bécard, G ;
Rosenberg, C ;
Barker, DG .
MOLECULAR PLANT-MICROBE INTERACTIONS, 2001, 14 (06) :695-700
[7]   Enrichment of tomato fruit with health-promoting anthocyanins by expression of select transcription factors [J].
Butelli, Eugenio ;
Titta, Lucilla ;
Giorgio, Marco ;
Mock, Hans-Peter ;
Matros, Andrea ;
Peterek, Silke ;
Schijlen, Elio G. W. M. ;
Hall, Robert D. ;
Bovy, Arnaud G. ;
Luo, Jie ;
Martin, Cathie .
NATURE BIOTECHNOLOGY, 2008, 26 (11) :1301-1308
[8]   Floral dip:: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana [J].
Clough, SJ ;
Bent, AF .
PLANT JOURNAL, 1998, 16 (06) :735-743
[9]   In situ protein degradation of alfalfa and birdsfoot trefoil hays and silages as influenced by condensed tannin concentration [J].
Coblentz, W. K. ;
Grabber, J. H. .
JOURNAL OF DAIRY SCIENCE, 2013, 96 (05) :3120-3137
[10]   Proanthocyanidin-accumulating cells in Arabidopsis testa: Regulation of differentiation and role in seed development [J].
Debeaujon, I ;
Nesi, N ;
Perez, P ;
Devic, M ;
Grandjean, O ;
Caboche, M ;
Lepiniec, L .
PLANT CELL, 2003, 15 (11) :2514-2531