Molecular Plant Biology and Biotechnology Lab, CSIR-Central Institute of Medicinal and Aromatic Plants Research Centre, Allalasandra, GKVK Post, Bengaluru, 560065, India.
Biotechnology Division, CSIR-Central Institute of Medicinal and Aromatic Plants, Lucknow, 226015, India.
New Phytol. 2017 Aug;215(3):1115-1131. doi: 10.1111/nph.14663. Epub 2017 Jun 26.
Withania somnifera produces pharmacologically important triterpenoid withanolides that are derived via phytosterol pathway; however, their biosynthesis and regulation remain to be elucidated. A jasmonate- and salicin-inducible WRKY transcription factor from W. somnifera (WsWRKY1) exhibiting correlation with withaferin A accumulation was functionally characterized employing virus-induced gene silencing and overexpression studies combined with transcript and metabolite analyses, and chromatin immunoprecipitation assay. WsWRKY1 silencing resulted in stunted plant growth, reduced transcripts of phytosterol pathway genes with corresponding reduction in phytosterols and withanolides in W. somnifera. Its overexpression elevated the biosynthesis of triterpenoids in W. somnifera (phytosterols and withanolides), as well as tobacco and tomato (phytosterols). Moreover, WsWRKY1 binds to W-box sequences in promoters of W. somnifera genes encoding squalene synthase and squalene epoxidase, indicating its direct regulation of triterpenoid pathway. Furthermore, while WsWRKY1 silencing in W. somnifera compromised the tolerance to bacterial growth, fungal infection, and insect feeding, its overexpression in tobacco led to improved biotic stress tolerance. Together these findings demonstrate that WsWRKY1 has a positive regulatory role on phytosterol and withanolides biosynthesis, and defense against biotic stress, highlighting its importance as a metabolic engineering tool for simultaneous improvement of triterpenoid biosynthesis and plant defense.
睡茄产生具有药理重要性的三萜甾体生物碱,这些物质是通过植物甾醇途径衍生而来的;然而,它们的生物合成和调控仍有待阐明。从睡茄中分离出的茉莉酸和水杨苷诱导型 WRKY 转录因子(WsWRKY1)与蛇根碱 A 的积累呈正相关,通过病毒诱导的基因沉默和过表达研究,结合转录组和代谢组分析以及染色质免疫沉淀实验对其功能进行了表征。沉默 WsWRKY1 导致植物生长受阻,植物甾醇途径基因的转录物减少,相应的植物甾醇和睡茄生物碱减少。过表达 WsWRKY1 可提高睡茄(植物甾醇和睡茄生物碱)、烟草和番茄(植物甾醇)中三萜类化合物的生物合成。此外,WsWRKY1 结合睡茄基因启动子中的 W 框序列,这些基因编码角鲨烯合酶和角鲨烯环氧化酶,表明其对三萜类途径具有直接调控作用。此外,尽管 WsWRKY1 沉默会削弱睡茄对细菌生长、真菌感染和昆虫取食的耐受性,但它在烟草中的过表达可提高生物胁迫耐受性。这些发现共同表明,WsWRKY1 对植物甾醇和蛇根碱 A 的生物合成以及生物胁迫防御具有正向调控作用,强调了其作为代谢工程工具的重要性,可同时提高三萜类化合物的生物合成和植物防御能力。