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Published on: July 22, 2017
Amino Acid Availability Determines Plant Immune Homeostasis in the Rhizosphere Microbiome
Yang Liu1, Andrew J Wilson1, Jiatong Han1
1Department of Microbiology and Immunology, The University of British Columbia, Vancouver, Canada.
Abstract:
Microbes possess conserved microbe-associated molecular patterns (MAMPs) that are recognized by plant receptors to induce pattern-triggered immunity (PTI). Despite containing the same MAMPs as pathogens, commensals thrive in the plant rhizosphere microbiome, indicating they must suppress or evade host immunity. Previous work found that bacterial-secreted gluconic acid is sufficient to suppress PTI. Here, we show that gluconic acid biosynthesis is not necessary for immunity suppression by the beneficial bacterial strain Pseudomonas simiae WCS417. We performed a forward genetic screen with EMS-mutagenized P. simiae WCS417 and a flagellin-inducible CYP71A12 reporter as a PTI readout. We identified a loss of function mutant in ornithine carbamoyltransferase argF, which is required for ornithine conversion to arginine, that cannot suppress PTI or acidify the rhizosphere. Fungal pathogens use alkalization through production of ammonia and glutamate, and arginine biosynthetic precursors, to promote their own growth and virulence. While a ΔargF mutant has a growth defect in the rhizosphere, we found that restoring growth with exogenous arginine resulted in rhizosphere alkalization in a mutant that cannot make gluconic acid, indicating that arginine biosynthesis is required for both growth and acidification. Furthermore, blocking bacterial arginine, glutamine, or proline biosynthesis through genetic mutations or feedback inhibition by adding corresponding amino acids, resulted in rhizosphere alkalization. Untargeted metabolomics determined that ornithine, an alkaline molecule, accumulates under conditions associated with rhizosphere alkalization. Our findings show that bacterial amino acid biosynthesis contributes to acidification by preventing accumulation of ornithine and the resulting alkalization. IMPORTANCE Understanding how microbiota evade and suppress host immunity is critical to our knowledge of how beneficial microbes persist in association with a host. Prior work has shown that secretion of organic acids by beneficial microbes is sufficient to suppress plant immunity. This work shows that microbial amino acid metabolism is not only critical for growth in the plant rhizosphere microbiome, but also for regulation of plant rhizosphere pH, and, consequentially, regulation of plant immunity. We found that, in the absence of microbial glutamate and arginine metabolism, rhizosphere alkalization and microbial overgrowth occurs. Collectively, our findings suggest that, by regulating nutrient availability, plants have the potential to regulate their immune homeostasis in the rhizosphere microbiome.
Insights
Beneficial microbes suppress plant immunity by altering rhizosphere pH through amino acid metabolism, not just organic acids. This impacts plant immune responses and microbial overgrowth.
Area of Science:
- Plant-microbe interactions
- Plant immunity
- Microbial metabolism
Background:
- Microbes use microbe-associated molecular patterns (MAMPs) to trigger plant immunity (PTI).
- Commensal microbes in the plant rhizosphere suppress or evade host immunity.
- Previous studies indicated bacterial gluconic acid suppresses PTI.
Purpose of the Study:
- Investigate mechanisms of immunity suppression by the beneficial bacterium *Pseudomonas simiae* WCS417.
- Determine if gluconic acid biosynthesis is essential for immunity suppression.
- Explore the role of microbial amino acid metabolism in plant immunity regulation.
Main Methods:
- Forward genetic screen using EMS-mutagenized *P. simiae* WCS417 and a flagellin-inducible *CYP71A12* reporter.
- Analysis of an *argF* loss-of-function mutant for PTI suppression and rhizosphere acidification.
- Metabolomic analysis to identify accumulating molecules under specific conditions.
Main Results:
- An *argF* mutant, deficient in arginine biosynthesis, failed to suppress PTI and acidify the rhizosphere.
- Arginine biosynthesis was linked to both microbial growth and rhizosphere acidification.
- Blocking amino acid biosynthesis (arginine, glutamine, proline) led to rhizosphere alkalization; ornithine accumulation correlated with alkalization.
Conclusions:
- Bacterial amino acid metabolism regulates rhizosphere pH by preventing ornithine accumulation and subsequent alkalization.
- Microbial amino acid metabolism is critical for growth, rhizosphere pH regulation, and consequently, plant immunity.
- Plants may regulate immune homeostasis in the rhizosphere by controlling nutrient availability and microbial metabolism.
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