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Updated: May 19, 2026

Identification of Post-translational Modifications of Plant Protein Complexes
Published on: February 22, 2014
AvrRpm1 missense mutations weakly activate RPS2-mediated immune response in Arabidopsis thaliana
Karen A Cherkis1, Brenda R S Temple, Eui-Hwan Chung
1Department of Biology, University of North Carolina, Chapel Hill, North Carolina, United States of America.
Abstract:
Plants recognize microbes via specific pattern recognition receptors that are activated by microbe-associated molecular patterns (MAMPs), resulting in MAMP-triggered immunity (MTI). Successful pathogens bypass MTI in genetically diverse hosts via deployment of effectors (virulence factors) that inhibit MTI responses, leading to pathogen proliferation. Plant pathogenic bacteria like Pseudomonas syringae utilize a type III secretion system to deliver effectors into cells. These effectors can contribute to pathogen virulence or elicit disease resistance, depending upon the host plant genotype. In disease resistant genotypes, intracellular immune receptors, typically belonging to the nucleotide binding leucine-rich repeat family of proteins, perceive bacterial effector(s) and initiate downstream defense responses (effector triggered immunity) that include the hypersensitive response, and transcriptional re-programming leading to various cellular outputs that collectively halt pathogen growth. Nucleotide binding leucine-rich repeat sensors can be indirectly activated via perturbation of a host protein acting as an effector target. AvrRpm1 is a P. syringae type III effector. Upon secretion into the host cell, AvrRpm1 is acylated by host enzymes and directed to the plasma membrane, where it contributes to virulence. This is correlated with phosphorylation of Arabidopsis RIN4 in vivo. RIN4 is a negative regulator of MAMP-triggered immunity, and its modification in the presence of four diverse type III effectors, including AvrRpm1, likely enhances this RIN4 regulatory function. The RPM1 nucleotide binding leucine-rich repeat sensor perceives RIN4 perturbation in disease resistant plants, leading to a successful immune response. Here, demonstrate that AvrRpm1 has a fold homologous to the catalytic domain of poly(ADP-ribosyl) polymerase. Site-directed mutagenesis of each residue in the putative catalytic triad, His63-Tyr122-Asp185 of AvrRpm1, results in loss of both AvrRpm1-dependent virulence and AvrRpm1-mediated activation of RPM1, but, surprisingly, causes a gain of function: the ability to activate the RPS2 nucleotide binding leucine-rich repeat sensor.
Insights
Plant pathogenic bacteria use effectors to suppress immunity. The AvrRpm1 effector
Area of Science:
- Plant-microbe interactions
- Plant immunity
- Molecular plant pathology
Background:
- Plants possess pattern recognition receptors for microbe-associated molecular patterns (MAMPs), initiating MAMP-triggered immunity (MTI).
- Pathogens like Pseudomonas syringae deliver effectors via type III secretion systems to evade MTI, impacting host virulence or resistance.
- Nucleotide binding leucine-rich repeat (NLR) receptors detect pathogen effectors, triggering effector-triggered immunity (ETI).
Purpose of the Study:
- To investigate the enzymatic activity and immune signaling roles of the Pseudomonas syringae effector AvrRpm1.
- To elucidate the mechanism by which AvrRpm1 interacts with plant immune components, specifically RIN4 and NLRs.
Main Methods:
- Structural analysis of AvrRpm1, identifying homology to poly(ADP-ribosyl) polymerase (PARP).
- Site-directed mutagenesis of conserved residues in AvrRpm1's putative catalytic triad (His63-Tyr122-Asp185).
- Assays to evaluate AvrRpm1's virulence, activation of RPM1 NLR, and activation of RPS2 NLR in Arabidopsis.
Main Results:
- AvrRpm1 exhibits a fold homologous to the catalytic domain of PARP.
- Mutations in the putative catalytic triad abolish AvrRpm1's virulence and its ability to activate the RPM1 immune receptor.
- Surprisingly, these catalytic triad mutations confer a novel function: activation of the RPS2 immune receptor.
Conclusions:
- AvrRpm1's catalytic activity is essential for its virulence function and RPM1-mediated immunity activation.
- The catalytic domain of AvrRpm1 plays a dual role in plant immunity, with distinct residues mediating interactions with different NLRs.
- This study reveals a novel mechanism of NLR activation through effector perturbation and highlights the complexity of plant-pathogen coevolution.
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