截形苜蓿
皂甙
生物
皂甙元
生物合成
生物化学
糖基转移酶
三萜
苯丙素
糖苷
转录组
基因
植物
遗传学
基因表达
替代医学
医学
细菌
共生
病理
作者
Bianca Ribeiro,Elia Lacchini,Keylla U. Bicalho,Jan Mertens,Philipp Arendt,Robin Vanden Bossche,Gabriela Calegário,Lore Gryffroy,Evi Ceulemans,Julia Buitink,Alain Goossens,Jacob Pollier
出处
期刊:The Plant Cell
[Oxford University Press]
日期:2020-04-17
卷期号:32 (6): 2020-2042
被引量:46
摘要
Plants produce a vast array of defense compounds to protect themselves from pathogen attack or herbivore predation. Saponins are a specific class of defense compounds comprising bioactive glycosides with a steroidal or triterpenoid aglycone backbone. The model legume Medicago truncatula synthesizes two types of saponins, hemolytic saponins and nonhemolytic soyasaponins, which accumulate as specific blends in different plant organs. Here, we report the identification of the seed-specific transcription factor TRITERPENE SAPONIN ACTIVATION REGULATOR3 (TSAR3), which controls hemolytic saponin biosynthesis in developing M. truncatula seeds. Analysis of genes that are coexpressed with TSAR3 in transcriptome data sets from developing M. truncatula seeds led to the identification of CYP88A13, a cytochrome P450 that catalyzes the C-16α hydroxylation of medicagenic acid toward zanhic acid, the final oxidation step of the hemolytic saponin biosynthesis branch in M. truncatula In addition, two uridine diphosphate glycosyltransferases, UGT73F18 and UGT73F19, which glucosylate hemolytic sapogenins at the C-3 position, were identified. The genes encoding the identified biosynthetic enzymes are present in clusters of duplicated genes in the M. truncatula genome. This appears to be a common theme among saponin biosynthesis genes, especially glycosyltransferases, and may be the driving force of the metabolic evolution of saponins.
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