Related Experiment Video
Updated: Dec 29, 2025

Plant-Microbe Interaction: Transcriptional Response of Bacillus Mycoides to Potato Root Exudates
Published on: July 2, 2018
Rhizosphere microbiome mediates systemic root metabolite exudation by root-to-root signaling
Elisa Korenblum1, Yonghui Dong1, Jedrzej Szymanski2
1Plant and Environmental Science Department, Weizmann Institute of Science, Rehovot 7610001, Israel.
Abstract:
Microbial communities associated with roots confer specific functions to their hosts, thereby modulating plant growth, health, and productivity. Yet, seminal questions remain largely unaddressed including whether and how the rhizosphere microbiome modulates root metabolism and exudation and, consequently, how plants fine tune this complex belowground web of interactions. Here we show that, through a process termed systemically induced root exudation of metabolites (SIREM), different microbial communities induce specific systemic changes in tomato root exudation. For instance, systemic exudation of acylsugars secondary metabolites is triggered by local colonization of bacteria affiliated with the genus Bacillus Moreover, both leaf and systemic root metabolomes and transcriptomes change according to the rhizosphere microbial community structure. Analysis of the systemic root metabolome points to glycosylated azelaic acid as a potential microbiome-induced signaling molecule that is subsequently exuded as free azelaic acid. Our results demonstrate that rhizosphere microbiome assembly drives the SIREM process at the molecular and chemical levels. It highlights a thus-far unexplored long-distance signaling phenomenon that may regulate soil conditioning.
More Related Videos
Related Concept Videos
Water and Mineral Acquisition
The Roles of Bacteria and Fungi in Plant Nutrition
The Apoplast and Symplast
Cell Signaling in Plants
Epiphytes, Parasites, and Carnivores
Responses to Drought and Flooding

