4.6 Article

Phenotypic Adaptation of Pseudomonas aeruginosa in the Presence of Siderophore-Antibiotic Conjugates during Epithelial Cell Infection

期刊

MICROORGANISMS
卷 8, 期 11, 页码 -

出版社

MDPI
DOI: 10.3390/microorganisms8111820

关键词

siderophore; siderophore– antibiotic; Pseudomonas aeruginosa; TonB dependent transporters; iron uptake; proteomic; antibiotics; vectorization

资金

  1. Centre National de la Recherche Scientifique
  2. association Vaincre la Mucoviscidose
  3. Innovative Medicines Joint Undertaking from the European Union's Seventh Framework Program (FP7/2007-2013) [115525]
  4. French Proteomics Infrastructure (ProFI) [ANR-10-INSB-08-03]
  5. Vaincre la Mucoviscidose
  6. Association Gregory Lemarchal
  7. Translocation Consortium

向作者/读者索取更多资源

Iron acquisition pathways have often been considered to be gateways for the uptake of antibiotics into bacteria. Bacteria excrete chelators, called siderophores, to access iron. Antibiotic molecules can be covalently attached to siderophores for their transport into pathogens during the iron-uptake process. P. aeruginosa produces two siderophores and is also able to use many siderophores produced by other bacteria. We investigated the phenotypic plasticity of iron-uptake pathway expression in an epithelial cell infection assay in the presence of two different siderophore-antibiotic conjugates, one with a hydroxamate siderophore and the second with a tris-catechol. Proteomic and RT-qPCR approaches showed that P. aeruginosa was able to sense the presence of both compounds in its environment and adapt the expression of its iron uptake pathways to access iron via them. Moreover, the catechol-type siderophore-antibiotic was clearly more efficient in inducing the expression of its corresponding transporter than the hydroxamate compound when both were simultaneously present. In parallel, the expression of the proteins of the two iron uptake pathways using siderophores produced by P. aeruginosa was significantly repressed in the presence of both conjugates. Altogether, the data indicate that catechol-type siderophores are more promising vectors for antibiotic vectorization using a Trojan-horse strategy.

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