Related Experiment Video
Updated: Aug 4, 2025

Dry Root Rot Disease Assays in Chickpea: a Detailed Methodology
Published on: January 17, 2021
[Variation and interaction mechanism between active components in Rheum officinale and rhizosphere soil
Feng-Pu Xie1, Nan Wang2, Jing Gao3
1State Key Laboratory of Research & Development of Characteristic Qin Medicine Resources (Cultivation),Co-construction Collaborative Innovation Center for Chinese Medicine Resources Industrialization by Shaanxi & Education Ministry,Shaanxi University of Chinese Medicine Xianyang 712083,China Key Laboratory for Research of "Qin Medicine" of Shaanxi Administration of Traditional Chinese Medicine,College of Pharmacy,Shaanxi University of Chinese Medicine Xi'an 712046,China.
Abstract:
To explore the changes and the reaction mechanisms between soil microecological environment and the content of secon-dary metabolites of plants under water deficit, this study carried out a pot experiment on the 3-leaf stage seedlings of Rheum officinale to analyze their response mechanism under different drought gradients(normal water supply, mild, moderate, and severe drought). The results indicated that the content of flavonoids, phenols, terpenoids, and alkaloids in the root of R. officinale varied greatly under drought stresses. Under mild drought stress, the content of substances mentioned above was comparatively high, and the content of rutin, emodin, gallic acid, and(+)-catechin hydrate in the root significantly increased. The content of rutin, emodin, and gallic acid under severe drought stress was significantly lower than that under normal water supply. The number of species, Shannon diversity index, richness index, and Simpson index of bacteria in the rhizosphere soil were significantly higher than those in blank soil, and the number of microbial species and richness index decreased significantly with the aggravation of drought stresses. In the context of water deficit, Cyanophyta, Firmicutes, Actinobacteria, Chloroflexi, Gemmatimonadetes, Streptomyces, and Actinomyces were the dominant bacteria in the rhizosphere of R. officinale. The relative content of rutin and emodin in the root of R. officinale was positively correlated with the relative abundance of Cyanophyta and Firmicutes, and the relative content of(+)-catechin hydrate and(-)-epicatechin gallate was positively correlated with the relative abundance of Bacteroidetes and Firmicutes. In conclusion, appropriate drought stress can increase the content of secondary metabolites of R. officinale from physiological induction and the increase in the association with beneficial microbe.
Related Concept Videos
Responses to Drought and Flooding
The Roles of Bacteria and Fungi in Plant Nutrition
Adaptations that Reduce Water Loss
Regulation of Transpiration by Stomata
Responses to Salt Stress
Environmental Applications of Microorganisms

