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Published on: March 9, 2021
Interactions of Wheat Powdery Mildew Effectors Involved in Recognition by the Wheat NLR PM3
Jonatan Isaksson1, Matthias Heuberger1, Milena Amhof1
1Department of Plant and Microbial Biology, University of Zürich, Zollikerstrasse 107, 8008 Zürich, Switzerland.
Abstract:
To successfully colonize the living tissue of its host, the fungal wheat powdery mildew pathogen produces diverse effector proteins that are suggested to reprogram host defense responses and physiology. When recognized by host immune receptors, these proteins become avirulence (AVR) effectors. Several sequence-diverse AVRPM3 effectors and the suppressor of AVRPM3-PM3 recognition (SVRPM3a1/f1) are involved in triggering allele-specific, Pm3-mediated resistance, but the molecular mechanisms controlling their function in the host cell remain unknown. Here, we describe that AVRPM3b2/c2, AVRPM3a2/f2, and SVRPM3a1/f1 form homo- and heteromeric complexes with each other, suggesting that they are present as dimers or higher-order multimers in the host cell. Alphafold2 modeling substantiated previous predictions that AVRPM3b2/c2, AVRPM3a2/f2, and SVRPM3a1/f1 all adopt a core RNase-like fold. We found that a single amino acid mutation in a predicted surface-exposed region of AVRPM3a2/f2 resulted in recognition by the PM3b immune receptor, which does not recognize wild-type AVRPM3a2/f2. This indicates that differential AVRPM3 recognition by variants of the highly related PM3 immune receptors is due to subtle differences in similar protein surfaces of sequence-diverse AVRs. Our study reveals complex molecular interactions between powdery mildew effectors. These findings suggest that structural similarity, rather than sequence conservation, underlies both the promiscuous multimerization of these effectors and their recognition by specific PM3 immune receptors. [Formula: see text] Copyright © 2025 The Author(s). This is an open access article distributed under the CC BY-NC-ND 4.0 International license.
Insights
Wheat powdery mildew effectors form complexes and share structural similarity, influencing host resistance. Subtle protein surface changes dictate recognition by specific immune receptors, revealing complex effector interactions.
Area of Science:
- Plant Pathology
- Molecular Plant-Microbe Interactions
- Fungal Effector Biology
Background:
- Fungal pathogens like wheat powdery mildew use effector proteins to manipulate host defenses.
- Avirulence (AVR) effectors are recognized by host immune receptors, triggering resistance.
- The function and interaction of AVRPM3 effectors and SVRPM3 suppressor remain unclear.
Purpose of the Study:
- To investigate the molecular mechanisms of AVRPM3 effectors and SVRPM3 suppressor function.
- To determine if these effectors form complexes and their structural characteristics.
- To understand how sequence-diverse effectors are recognized by PM3 immune receptors.
Main Methods:
- Analysis of homo- and heteromeric complex formation between AVRPM3 effectors and SVRPM3.
- Alphafold2 protein structure prediction for AVRPM3 effectors and SVRPM3.
- Site-directed mutagenesis of AVRPM3a2/f2 to assess PM3b immune receptor recognition.
Main Results:
- AVRPM3b2/c2, AVRPM3a2/f2, and SVRPM3a1/f1 form homo- and heteromeric complexes, existing as dimers.
- All studied proteins share a core RNase-like fold.
- A single amino acid mutation in AVRPM3a2/f2 altered its recognition by the PM3b immune receptor.
Conclusions:
- Structural similarity, not sequence conservation, drives effector dimerization and PM3 receptor recognition.
- Subtle differences in protein surface structures explain differential recognition by PM3 variants.
- This study elucidates complex interactions among wheat powdery mildew effectors.

