Mechanisms underlying iron deficiency-induced resistance against pathogens with different lifestyles
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2021-03-17
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Abstract
Iron (Fe) is a poorly available mineral nutrient which affects the outcome of many cross-kingdom interactions. In Arabidopsis thaliana, Fe starvation limits infection by necrotrophic pathogens. Here, we report that Fe deficiency also reduces disease caused by the hemi-biotrophic bacterium Pseudomonas syringae and the biotrophic oomycete Hyaloperonospora arabidopsidis, indicating that Fe deficiency-induced resistance is effective against pathogens with different lifestyles. Furthermore, we show that Fe deficiency-induced resistance is not caused by withholding Fe from the pathogen but is a plant-mediated defense response that requires activity of ethylene and salicylic acid. Because rhizobacteria-induced systemic resistance (ISR) is associated with a transient up-regulation of the Fe deficiency response, we tested whether Fe deficiency-induced resistance and ISR are similarly regulated. However, Fe deficiency-induced resistance functions independently of the ISR regulators MYB72 and BGLU42, indicating that both types of induced resistance are regulated in a different manner. Mutants opt3 and frd1, which display misregulated Fe homeostasis under Fe-sufficient conditions, show disease resistance levels comparable with those of Fe-starved wild-type plants. Our results suggest that disturbance of Fe homeostasis, through Fe starvation stress or other non-homeostatic conditions, is sufficient to prime the plant immune system for enhanced defense.
Keywords
Arabidopsis thaliana, Botrytis cinerea, defense priming, Hyaloperonospora arabidopsidis, induced resistance, ironhomeostasis, plant immunity, Pseudomonas syringae, iron homeostasis, Taverne, Physiology, Plant Science
Citation
Trapet, P L, Verbon, E H, Bosma, R R, Voordendag, K, Van Pelt, J A & Pieterse, C M J 2021, 'Mechanisms underlying iron deficiency-induced resistance against pathogens with different lifestyles', Journal of Experimental Botany, vol. 72, no. 6, pp. 2231–2241. https://doi.org/10.1093/jxb/eraa535