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Updated: Jul 15, 2026

The Plant Infection Test: Spray and Wound-Mediated Inoculation with the Plant Pathogen Magnaporthe Grisea
Published on: August 4, 2018
Two folds, many faces: The Magnaporthe oryzae MAX effector AVR-Pia targets novel rice HMA domain-containing proteins
Josephine H R Maidment1,2, Svenja C Saile1, Aurélien Bocquet1,2
1PHIM Plant Health Institute, Univ Montpellier, INRAE, CIRAD, Institut Agro, IRD, Montpellier, France.
Abstract:
Phytopathogenic fungi secrete effector proteins to promote virulence. The MAX (Magnaporthe Avrs and ToxB-like) effectors form a structurally conserved family despite significant sequence diversity. AVR-Pia, a MAX effector from the rice blast fungus Magnaporthe oryzae, is recognised by the model rice nucleotide-binding leucine-rich repeat (NLR) receptor pair OsRGA4/OsRGA5 via direct binding to a heavy metal-associated (HMA) integrated domain (ID) in OsRGA5. While the structural basis of AVR-Pia recognition is well defined, the role of this effector in promoting virulence has remained elusive. Here, we reveal that AVR-Pia specifically interacts with four previously uncharacterised rice HMA domain-containing proteins, three HMA Plant Proteins (OsHPP09, OsHPP10 and OsHPP11), and one HMA Isoprenylated Plant Protein (OsHIPP21). AVR-Pia binds these proteins in vitro and in planta, engaging their HMA domains with differential affinities. Notably, AVR-Pia binds OsHPP09-HMA with considerably higher affinity than the HMA-ID of OsRGA5. By solving the crystal structure of the AVR-Pia/OsHPP09-HMA complex, we identified additional molecular contacts at the interface which underpin high affinity binding. Importantly, the H(I)PPs identified as AVR-Pia interactors are distinct from those bound by the MAX effectors AVR-Pik and Pwl2, underscoring target specialisation within the MAX effector family. Further, structural analyses of the AVR-Pia/OsHPP09-HMA complex revealed a markedly different interface compared to other MAX effector/H(I)PP complexes. Finally, structure-guided mutagenesis of OsHPP09 identified a single residue that is critical for AVR-Pia binding. This work provides structural insight into how distinct MAX effectors exploit HMA domain-containing proteins and offers a foundation towards targeted modification of HMA domains to disrupt effector binding and enhance cereal resistance to blast disease.
Insights
The rice blast fungus effector AVR-Pia targets specific rice HMA proteins, distinct from other MAX effectors. Structural analysis reveals high-affinity binding, offering insights to enhance cereal resistance to fungal diseases.
Area of Science:
- Plant-pathogen interactions
- Molecular plant pathology
- Structural biology
Background:
- Phytopathogenic fungi use effector proteins to cause disease.
- MAX (Magnaporthe Avrs and ToxB-like) effectors are structurally conserved but sequence-diverse.
- AVR-Pia, a MAX effector from Magnaporthe oryzae, interacts with rice NLR receptors OsRGA4/OsRGA5 via its HMA domain.
Purpose of the Study:
- To elucidate the role of AVR-Pia in promoting virulence.
- To identify and characterize novel AVR-Pia interacting proteins.
- To determine the structural basis of AVR-Pia's interaction with its targets.
Main Methods:
- Yeast two-hybrid screening and co-immunoprecipitation assays to identify interacting proteins.
- In vitro binding assays and isothermal titration calorimetry to assess binding affinities.
- X-ray crystallography to determine the structure of the AVR-Pia/OsHPP09-HMA complex.
- Site-directed mutagenesis to identify critical residues for binding.
Main Results:
- AVR-Pia specifically interacts with four rice HMA domain-containing proteins: OsHPP09, OsHPP10, OsHPP11, and OsHIPP21.
- AVR-Pia exhibits differential binding affinities for these proteins, with a notably high affinity for OsHPP09-HMA.
- The crystal structure of the AVR-Pia/OsHPP09-HMA complex reveals unique molecular contacts and a distinct interface compared to other MAX effector complexes.
- A single residue in OsHPP09 was identified as critical for AVR-Pia binding.
Conclusions:
- AVR-Pia exploits specific rice HMA proteins for virulence, distinct from other MAX effectors, indicating target specialization.
- The structural insights into AVR-Pia's high-affinity binding provide a foundation for developing strategies to disrupt effector function.
- Targeted modification of HMA domains could enhance cereal resistance against rice blast disease.
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