Search bioRxiv⌕ Search

Biology subjects

Riquelme, S.

Publications and source records attributed to Riquelme, S..

2 recordsLinked to original sources

T6SS mutants exploit itaconate to support infection of phagocytes

Pseudomonas aeruginosa is a major cause of persistent pneumonias that are not readily cleared by seemingly appropriate antimicrobial therapy. We identified a reservoir of P. aeruginosa variants lacking expression of the H3-T6SS in patients with chronic but not acute pneumonia. A PAO1 {Delta}H3-T6 mutant caused increased infection in the murine lung as compared to the wild-type strain. The {Delta}H3 mutants exhibited increased transcription of genes involved in phagocytic uptake and respiration under conditions found in the phagolysosome, namely low O2, low pH and abundant itaconate. We confirmed increased intraphagocytic residence of the {Delta}H3 mutants and colocalization with LAMP1 within the phagolysosome of both bone marrow derived macrophages in vitro and in alveolar macrophages harvested directly from infected lungs. Persistence within macrophages required itaconate which preserved the viability of infected macrophages and boosted bacterial bioenergetics to optimize consumption of available carbon sources. Our findings demonstrate that selection for loss of H3-T6SS loss of function mutations promotes the metabolic versatility that enables P. aeruginosa to cause intractable pulmonary infection.

immunology↗

Sequestration of the phagocyte metabolite itaconate by P. aeruginosa RpoN promotes successful pulmonary infection

AbstractThe phagocyte immunometabolite itaconate, normally toxic to bacteria, functions as a signal to stimulate the adaptation of the pulmonary pathogen Pseudomonas aeruginosa to the lung. Itaconate is actively transported into P. aeruginosa where it induces {sigma}54 rpoN expression and co-valently binds cysteine residues on RpoN. RpoN not only functions as a sink to limit itaconate toxicity but S- itaconated RpoN promotes increased utilization of the Entner Doudoroff pathway, optimizing bacterial metabolism in the setting of inflammation. S-itaconation of RpoN directs a global metabolic response that fuels pulmonary infection.

microbiology↗