Widely Targeted Metabolomics Analysis Reveals the Effect of Flooding Stress on the Synthesis of Flavonoids in Chrysanthemum morifolium

Molecules. 2019 Oct 14;24(20):3695. doi: 10.3390/molecules24203695.

Abstract

Chrysanthemum morifolium. cv "Hangju" is an important medicinal material with many functions in China. Flavonoids as the main secondary metabolites are a major class of medicinal components in "Hangju" and its composition and content can change significantly after flooding. This study mimicked the flooding stress of "Hangju" during flower bud differentiation and detected its metabolites in different growth stages. From widely targeted metabolomics data, 661 metabolites were detected, of which 46 differential metabolites exist simultaneously in the different growth stages of "Hangju". The top three types of the 46 differential metabolites were flavone C-glycosides, flavonol and flavone. Our results demonstrated that the accumulation of flavonoids in different growth stages of "Hangju" was different; however, quercetin, eriodictyol and most of the flavone C-glycosides were significantly enhanced in the two stages after flooding stress. The expression of key enzyme genes in the flavonoid synthesis pathway were determined using RT-qPCR, which verified the consistency of the expression levels of CHI, F3H, DFR and ANS with the content of the corresponding flavonoids. A regulatory network of flavonoid biosynthesis was established to illustrate that flooding stress can change the accumulation of flavonoids by affecting the expression of the corresponding key enzymes in the flavonoid synthesis pathway.

Keywords: Chrysanthemum morifolium; flavonoid biosynthesis; flooding stress; metabolomics.

MeSH terms

  • China
  • Chrysanthemum / chemistry*
  • Chrysanthemum / metabolism
  • Flavonoids / metabolism*
  • Flavonoids / therapeutic use
  • Flowers / chemistry*
  • Flowers / metabolism
  • Humans
  • Medicine, Chinese Traditional
  • Metabolomics*
  • Quercetin / metabolism

Substances

  • Flavonoids
  • Quercetin