A critical role for Arabidopsis MILDEW RESISTANCE LOCUS O2 in systemic acquired resistance
Katrin Gruner1, Tatyana Zeier1, Christina Aretz1
1Institute for Molecular Ecophysiology of Plants, Department of Biology, Heinrich Heine University, Universitätsstraße 1, Düsseldorf, D-40225, Germany.
Abstract:
Members of the MILDEW RESISTANCE LOCUS O (MLO) gene family confer susceptibility to powdery mildews in different plant species, and their existence therefore seems to be disadvantageous for the plant. We recognized that expression of the Arabidopsis MLO2 gene is induced after inoculation with the bacterial pathogen Pseudomonas syringae, promoted by salicylic acid (SA) signaling, and systemically enhanced in the foliage of plants exhibiting systemic acquired resistance (SAR). Importantly, distinct mlo2 mutant lines were unable to systemically increase resistance to bacterial infection after inoculation with P. syringae, indicating that the function of MLO2 is necessary for biologically induced SAR in Arabidopsis. Our data also suggest that the close homolog MLO6 has a supportive but less critical role in SAR. In contrast to SAR, basal resistance to bacterial infection was not affected in mlo2. Remarkably, SAR-defective mlo2 mutants were still competent in systemically increasing the levels of the SAR-activating metabolites pipecolic acid (Pip) and SA after inoculation, and to enhance SAR-related gene expression in distal plant parts. Furthermore, although MLO2 was not required for SA- or Pip-inducible defense gene expression, it was essential for the proper induction of disease resistance by both SAR signals. We conclude that MLO2 acts as a critical downstream component in the execution of SAR to bacterial infection, being required for the translation of elevated defense responses into disease resistance. Moreover, our data suggest a function for MLO2 in the activation of plant defense priming during challenge by P. syringae.
Insights
The Arabidopsis MLO2 gene is crucial for systemic acquired resistance (SAR) against bacterial pathogens like Pseudomonas syringae. MLO2 enables plants to translate defense signals into actual disease resistance, highlighting its role in plant immunity.
Area of Science:
- Plant pathology
- Molecular plant-microbe interactions
- Plant immunity
Background:
- The MILDEW RESISTANCE LOCUS O (MLO) gene family typically confers susceptibility to powdery mildews.
- MLO gene expression is often considered disadvantageous for plants.
- The role of MLO genes in plant defense against bacterial pathogens was largely unexplored.
Purpose of the Study:
- To investigate the role of Arabidopsis MLO2 in plant defense against bacterial pathogens.
- To determine if MLO2 is involved in systemic acquired resistance (SAR) to bacterial infection.
- To elucidate the mechanism by which MLO2 contributes to plant immunity.
Main Methods:
- Analysis of mlo2 mutant lines in Arabidopsis thaliana.
- Bacterial inoculation with Pseudomonas syringae.
- Quantification of salicylic acid (SA) and pipecolic acid (Pip) levels.
- Gene expression analysis of SAR-related genes.
- Assessment of basal and SAR-mediated disease resistance.
Main Results:
- MLO2 expression is induced by P. syringae and salicylic acid (SA) signaling.
- mlo2 mutants exhibit impaired systemic acquired resistance (SAR) to P. syringae.
- MLO2 is essential for translating defense signals into disease resistance, not for signal production.
- Basal resistance and SAR signal metabolite accumulation are unaffected in mlo2 mutants.
Conclusions:
- MLO2 is a critical downstream component required for the execution of SAR against bacterial pathogens.
- MLO2 functions in the proper induction of disease resistance by SAR signals.
- MLO2 may play a role in activating plant defense priming during bacterial challenge.
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