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Dual role of desferrioxamine in Erwinia amylovora pathogenicity
A Dellagi1, M N Brisset, J P Paulin
1Laboratoire de Pathologie Végétale, INRA/INA P-G, Paris, France.
Abstract:
To investigate the role of iron in Erwinia amylovora pathogenicity, virulence properties of two mutants of strain CFBP 1430 isolated by insertional mutagenesis and affected in the iron transport pathway mediated by desferrioxamine (DFO) were analyzed. One mutation (dfoA::MudIIpR13) disrupts DFO biosynthesis. The present analysis shows that this mutation affects an open reading frame that belongs to a biosynthetic gene cluster and shares identity with the alcA gene required for synthesis of the siderophore alcaligin in Bordetella spp. A second mutation (foxR::MudIIpR13) affects the synthesis of the ferrioxamine receptor FoxR, encoded by the foxR gene, and was shown to be transcribed into a monocistronic message. Accordingly, the foxR mutant accumulates DFO in the external medium. The growth of the mutants when supplied with various iron sources was examined; it indicates that the production of DFO and the specific transport of the DFO ferric complex are required only when iron is strongly liganded. Pathogenicity was scored after inoculation of apple seedlings and after infection of apple flowers. On seedlings, the DFO biosynthetic mutant behaved like the wild-type strain while the frequency of necrotic plants caused by the receptor mutant decreased by a factor of two to five, depending on the initial inoculum. On flowers, both mutants were strongly affected in their ability to initiate a necrotic symptom and their growth was reduced by two orders of magnitude relative to the wild-type strain. However, the virulence of the dfoA mutant varied with the inoculum concentration. Unlike the foxR mutant, the dfoA mutant only weakly induced plant cell electrolyte leakage in tobacco leaf disks. The supply with exogenous DFO, only when iron free, restored the ability to induce electrolyte leakage to the dfoA mutant and increased the leakage induced by other strains. DFO alone was not an inducer. Iron-free DFO was able to protect E. amylovora cells against lethal doses of hydrogen peroxide. The main conclusion was that production of DFO in E. amylovora during pathogenesis is not only a critical function for iron acquisition, but can play a role in the oxidative burst elicited by the bacteria.
Insights
Erwinia amylovora uses desferrioxamine (DFO) for iron uptake, crucial for pathogenicity, especially in flowers. DFO also plays a role in protecting bacteria against oxidative stress during infection.
Area of Science:
- Microbial Pathogenesis
- Bacterial Physiology
- Plant-Microbe Interactions
Background:
- Iron is essential for bacterial growth and virulence.
- Erwinia amylovora causes fire blight, a devastating disease in apple and pear trees.
- Desferrioxamine (DFO) is a siderophore used by bacteria to scavenge iron.
Purpose of the Study:
- To investigate the role of DFO in Erwinia amylovora pathogenicity.
- To analyze the virulence of DFO biosynthesis and receptor mutants.
- To understand DFO's contribution to iron acquisition and oxidative stress response.
Main Methods:
- Insertional mutagenesis to create dfoA and foxR mutants.
- Growth assays with various iron sources.
- Pathogenicity tests on apple seedlings and flowers.
- Electrolyte leakage assays on tobacco leaf disks.
- Hydrogen peroxide protection assays.
Main Results:
- DFO biosynthesis and receptor mutants showed reduced virulence, particularly on apple flowers.
- The foxR mutant accumulated DFO, indicating impaired receptor function.
- DFO production is essential for iron acquisition when iron is scarce or strongly liganded.
- DFO, when iron-free, protected bacteria against hydrogen peroxide, suggesting a role in oxidative burst mitigation.
Conclusions:
- DFO is critical for Erwinia amylovora iron acquisition and pathogenicity, especially in floral infections.
- DFO production contributes to bacterial survival by mitigating oxidative stress during plant infection.