Unusual evolutionary mechanisms to escape effector-triggered immunity in the fungal phytopathogen Leptosphaeria
C Plissonneau1,2, F Blaise1, B Ollivier1
1UMR BIOGER, INRA, AgroParisTech, Université Paris-Saclay, Avenue Lucien Brétignières, BP 01, F-78850, Thiverval-Grignon, France.
Abstract:
Leptosphaeria maculans is the fungus responsible for the stem canker disease of oilseed rape (Brassica napus). AvrLm3 and AvrLm4-7, two avirulence effector genes of L. maculans, are involved in an unusual relationship: AvrLm4-7 suppresses the Rlm3-mediated resistance. Here, we assessed AvrLm3 polymorphism in a collection of 235 L. maculans isolates. No field isolates exhibited deletion or inactivating mutations in AvrLm3, as observed for other L. maculans avirulence genes. Eleven isoforms of the AvrLm3 protein were found. In isolates virulent towards both Rlm3 and Rlm7 (a3a7), the loss of the Rlm3-mediated resistance response was due to two distinct mechanisms. First, when AvrLm4-7 was inactivated (deletion or inactivating mutations), amino acid substitutions in AvrLm3 generated virulent isoforms of the protein. Second, when only point mutations were observed in AvrLm4-7, a3a7 isolates still contained an avirulent allele of AvrLm3. Directed mutagenesis confirmed that some point mutations in AvrLm4-7 were sufficient for the fungus to escape Rlm7-mediated resistance while maintaining the suppression of the AvrLm3 phenotype. Signatures of positive selection were also identified in AvrLm3. The complex evolutionary mechanisms enabling L. maculans to escape Rlm3-mediated resistance while preserving AvrLm3 integrity, along with observed reduced aggressiveness of isolates silenced for AvrLm3, serves to emphasize the importance of this effector in pathogenicity towards B. napus. While the common response to resistance gene pressure is local selection of isolates depleted in the cognate avirulence gene, this example contributes to complexify the gene-for-gene concept of plant-pathogen evolution with a 'camouflaged' model allowing retention of nondispensable avirulence effectors.
Insights
Leptosphaeria maculans uses complex strategies to overcome oilseed rape resistance. The fungus maintains its AvrLm3 effector gene, unlike other avirulence genes, to evade plant defenses and cause stem canker disease.
Area of Science:
- Plant Pathology
- Molecular Genetics
- Evolutionary Biology
Background:
- Leptosphaeria maculans causes stem canker in oilseed rape (Brassica napus).
- Avirulence effectors AvrLm3 and AvrLm4-7 play a role in the L. maculans-B. napus interaction.
- AvrLm4-7 is known to suppress Rlm3-mediated resistance.
Purpose of the Study:
- To investigate the polymorphism of the AvrLm3 effector gene in L. maculans isolates.
- To understand the mechanisms by which L. maculans achieves virulence against Rlm3 and Rlm7 resistance.
- To explore the evolutionary dynamics of avirulence genes in plant-pathogen interactions.
Main Methods:
- Analysis of AvrLm3 polymorphism in 235 L. maculans isolates.
- Directed mutagenesis to confirm the function of specific mutations in AvrLm4-7.
- Identification of positive selection signatures in AvrLm3.
Main Results:
- No field isolates showed deletions or inactivating mutations in AvrLm3.
- Eleven AvrLm3 protein isoforms were identified.
- Two distinct mechanisms contribute to virulence against Rlm3 and Rlm7, involving AvrLm4-7 inactivation or point mutations, and AvrLm3 modifications.
- Mutations in AvrLm4-7 can allow escape from Rlm7 resistance while maintaining AvrLm3 suppression.
- Positive selection was detected in AvrLm3.
Conclusions:
- L. maculans employs complex evolutionary strategies to evade Rlm3-mediated resistance, preserving AvrLm3 integrity.
- The AvrLm3 effector is crucial for pathogenicity towards B. napus.
- This study proposes a 'camouflaged' model complicating the gene-for-gene concept, where pathogens retain avirulence effectors.
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