Evolution of Structural Diversity of Triterpenoids

被引:97
作者
Cardenas, Pablo D. [1 ]
Almeida, Aldo [1 ]
Bak, Soren [1 ]
机构
[1] Univ Copenhagen, Dept Plant & Environm Sci, Frederiksberg, Denmark
基金
欧盟地平线“2020”;
关键词
triterpenoid saponins; structural diversity; convergent evolution; plant specialized metabolism; unlinked versus clustered pathways; METABOLIC GENE CLUSTERS; BARBAREA-VULGARIS; LUPEOL SYNTHASE; UDP-GLYCOSYLTRANSFERASES; SAPONIN BIOSYNTHESIS; DEFENSE COMPOUNDS; UGT73C SUBFAMILY; WILD CRUCIFER; BETA-AMYRIN; PLANT;
D O I
10.3389/fpls.2019.01523
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Plants have evolved to produce a blend of specialized metabolites that serve functional roles in plant adaptation. Among them, triterpenoids are one of the largest subclasses of such specialized metabolites, with more than 14,000 known structures. They play a role in plant defense and development and have potential applications within food and pharma. Triterpenoids are cyclized from oxidized squalene precursors by oxidosqualene cyclases, creating more than 100 different cyclical triterpene scaffolds. This limited number of scaffolds is the first step towards creating the vast structural diversity of triterpenoids followed by extensive diversification, in particular, by oxygenation and glycosylation. Gene duplication, divergence, and selection are major forces that drive triterpenoid structural diversification. The triterpenoid biosynthetic genes can be organized in non-homologous gene clusters, such as in Avena spp., Cucurbitaceae and Solanum spp., or scattered along plant chromosomes as in Barbarea vulgaris. Paralogous genes organized as tandem repeats reflect the extended gene duplication activities in the evolutionary history of the triterpenoid saponin pathways, as seen in B. vulgaris. We review and discuss examples of convergent and divergent evolution in triterpenoid biosynthesis, and the apparent mechanisms occurring in plants that drive their increasing structural diversity within and across species. Using B. vulgaris' saponins as examples, we discuss the impact a single structural modification can have on the structure of a triterpenoid and how this affect its biological properties. These examples provide insight into how plants continuously evolve their specialized metabolome, opening the way to study uncharacterized triterpenoid biosynthetic pathways.
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页数:10
相关论文
共 75 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]   A saponin correlated with variable resistance of Barbarea vulgaris to the diamondback moth Plutella xylostella [J].
Agerbirk, N ;
Olsen, CE ;
Bibby, BM ;
Frandsen, HO ;
Brown, LD ;
Nielsen, JK ;
Renwick, JAA .
JOURNAL OF CHEMICAL ECOLOGY, 2003, 29 (06) :1417-1433
[3]   A Single Oxidosqualene Cyclase Produces the Seco-Triterpenoid α-Onocerin [J].
Almeida, Aldo ;
Dong, Lemeng ;
Khakimov, Bekzod ;
Bassard, Jean-Etienne ;
Moses, Tessa ;
Lota, Frederic ;
Goossens, Alain ;
Appendino, Giovanni ;
Bak, Soren .
PLANT PHYSIOLOGY, 2018, 176 (02) :1469-1484
[4]  
[Anonymous], CHINESE MED
[5]   Onocerin Biosynthesis Requires Two Highly Dedicated Triterpene Cyclases in a Fern Lycopodium clavatum [J].
Araki, Takeshi ;
Saga, Yusuke ;
Marugami, Momo ;
Otaka, Junnosuke ;
Araya, Hiroshi ;
Saito, Kazuki ;
Yamazaki, Mami ;
Suzuki, Hideyuki ;
Kushiro, Tetsuo .
CHEMBIOCHEM, 2016, 17 (04) :288-290
[6]   The membrane-permeabilizing effect of avenacin A-1 involves the reorganization of bilayer cholesterol [J].
Armah, CN ;
Mackie, AR ;
Roy, C ;
Price, K ;
Osbourn, AE ;
Bowyer, P ;
Ladha, S .
BIOPHYSICAL JOURNAL, 1999, 76 (01) :281-290
[7]   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
[8]   Molecular activities, biosynthesis and evolution of triterpenoid saponins [J].
Augustin, Jorg M. ;
Kuzina, Vera ;
Andersen, Sven B. ;
Bak, Soren .
PHYTOCHEMISTRY, 2011, 72 (06) :435-457
[9]   Elucidating steroid alkaloid biosynthesis in Veratrum californicum: production of verazine in Sf9 cells [J].
Augustin, Megan M. ;
Ruzicka, Dan R. ;
Shukla, Ashutosh K. ;
Augustin, Joerg M. ;
Starks, Courtney M. ;
O'Neil-Johnson, Mark ;
McKain, Michael R. ;
Evans, Bradley S. ;
Barrett, Matt D. ;
Smithson, Ann ;
Wong, Gane Ka-Shu ;
Deyholos, Michael K. ;
Edger, Patrick P. ;
Pires, J. Chris ;
Leebens-Mack, James H. ;
Mann, David A. ;
Kutchan, Toni M. .
PLANT JOURNAL, 2015, 82 (06) :991-1003
[10]   Effects of Iberis umbellata (Brassicaceae) on insect pests of cabbage and on potential biological control agents [J].
Bigger, DS ;
Chaney, WE .
ENVIRONMENTAL ENTOMOLOGY, 1998, 27 (01) :161-167