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Updated: Aug 14, 2025

Screening and Identification of RNA Silencing Suppressors from Secreted Effectors of Plant Pathogens
Published on: February 3, 2020
A rust-fungus Nudix hydrolase effector decaps mRNA in vitro and interferes with plant immune pathways
Carl L McCombe1, Ann-Maree Catanzariti1, Julian R Greenwood1
1Plant Sciences Division, Research School of Biology, The Australian National University, Canberra, ACT, 2601, Australia.
Abstract:
To infect plants, pathogenic fungi secrete small proteins called effectors. Here, we describe the catalytic activity and potential virulence function of the Nudix hydrolase effector AvrM14 from the flax rust fungus (Melampsora lini). We completed extensive in vitro assays to characterise the enzymatic activity of the AvrM14 effector. Additionally, we used in planta transient expression of wild-type and catalytically dead AvrM14 versions followed by biochemical assays, phenotypic analysis and RNA sequencing to unravel how the catalytic activity of AvrM14 impacts plant immunity. AvrM14 is an extremely selective enzyme capable of removing the protective 5' cap from mRNA transcripts in vitro. Homodimerisation of AvrM14 promoted biologically relevant mRNA cap cleavage in vitro and this activity was conserved in related effectors from other Melampsora spp. In planta expression of wild-type AvrM14, but not the catalytically dead version, suppressed immune-related reactive oxygen species production, altered the abundance of some circadian-rhythm-associated mRNA transcripts and reduced the hypersensitive cell-death response triggered by the flax disease resistance protein M1. To date, the decapping of host mRNA as a virulence strategy has not been described beyond viruses. Our results indicate that some fungal pathogens produce Nudix hydrolase effectors with in vitro mRNA-decapping activity capable of interfering with plant immunity.
Insights
Flax rust fungus effector AvrM14 decaps plant mRNA, suppressing immunity. This Nudix hydrolase activity is a novel fungal virulence strategy, impacting plant defense responses.
Area of Science:
- Plant Pathology
- Molecular Plant-Microbe Interactions
- Fungal Effector Biology
Background:
- Pathogenic fungi utilize secreted effectors to infect plants.
- Understanding effector function is crucial for plant disease resistance.
Purpose of the Study:
- To characterize the catalytic activity and virulence function of the Nudix hydrolase effector AvrM14 from Melampsora lini.
- To investigate how AvrM14's enzymatic activity impacts plant immunity.
Main Methods:
- In vitro enzymatic assays to characterize AvrM14 activity.
- In planta transient expression of AvrM14 and its catalytically dead mutant.
- Biochemical assays, phenotypic analysis, and RNA sequencing.
Main Results:
- AvrM14 exhibits selective mRNA decapping activity, removing the 5' cap.
- Homodimerization enhances AvrM14's mRNA cap cleavage activity, conserved in related effectors.
- In planta expression of active AvrM14 suppressed reactive oxygen species production, altered mRNA abundance, and reduced hypersensitive cell death.
Conclusions:
- Fungal Nudix hydrolase effectors can possess mRNA decapping activity.
- mRNA decapping is a potential virulence strategy for fungal pathogens, interfering with plant immunity.
- This mechanism offers new insights into plant-pathogen interactions and disease resistance.
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