Dynamic metabolic and transcriptomic profiling of methyl jasmonate‐treated hairy roots reveals synthetic characters and regulators of lignan biosynthesis in Isatis indigotica Fort

木脂素 茉莉酸甲酯 生物合成 生物 生物化学 代谢途径 茉莉酸 苯丙素 转录组 代谢组学 基因 代谢工程 植物 基因表达 拟南芥 生物信息学 突变体
作者
Lei Zhang,Junfeng Chen,Xun Zhou,Xiaofei Chen,Qing Li,Hexin Tan,Xin Dong,Ying Xiao,Langdong Chen,Wansheng Chen
出处
期刊:Plant Biotechnology Journal [Wiley]
卷期号:14 (12): 2217-2227 被引量:56
标识
DOI:10.1111/pbi.12576
摘要

A molecular description of lignan biosynthesis in Isatis indigotica displaying its synthetic characteristics and regulatory mechanism is of great importance for the improvement of the production of this class of active compounds. To discover the potential key catalytic steps and regulatory genes, I. indigotica hairy roots elicited by methyl jasmonate (MeJA) were used as a source of systematic variation for exploring the metabolic/transcriptional changes and candidate genes that might play key roles in lignan biosynthesis. The reprogramming modulated by MeJA was classified into three distinct phases, referred to as signal responding, transcriptional activation of metabolic pathways and accumulation of metabolites. Candidate genes were pooled according to the three phases and applied to co-expression network analysis. In total, 17 genes were identified as hub genes. 4CL3 was selected to validate its impact on lignan biosynthesis. RNAi of 4CL3 resulted in a significant reduction in lignan production. Taken together with its catalytic property, a major route of lignan biosynthesis in I. indigotica was highlighted, which was catalysed by 4CL3 via the esterization of caffeic acid. In conclusion, this study provides new insights into lignan biosynthesis as well as potential targets for metabolic engineering in I. indigotica.
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