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Legionella pneumophila Outer Membrane Vesicles: Isolation and Analysis of Their Pro-inflammatory Potential on Macrophages
Published on: February 22, 2017
Bacterial outer membrane vesicles bound to bacteriophages modulate neutrophil responses to bacterial infection
Nina Pennetzdorfer1, Medeea C Popescu1,2, Naomi L Haddock1,2
1Division of Infectious Diseases, Department of Medicine, Stanford University, Stanford, CA, United States.
Abstract:
Pseudomonas aeruginosa is a major human pathogen, particularly effective at colonizing the airways of patients with cystic fibrosis. Bacteriophages are highly abundant at infection sites, but their impact on mammalian immunity remains unclear. We previously showed that Pf4, a temperate filamentous bacteriophage produced by P. aeruginosa, modifies the innate immune response to P. aeruginosa infections via TLR3 signaling, but the underlying mechanisms remained unclear. Notably, Pf4 is a single-stranded DNA and lysogenic phage, and its production does not typically result in lysis of its bacterial host. We identified previously that internalization of Pf4 by human or murine immune cells triggers maladaptive viral pattern recognition receptors and resulted in bacterial persistence based on the presence of phage RNA. We report now that Pf4 phage dampens inflammatory responses to bacterial endotoxin and that this is mediated in part via bacterial vesicles attached to phage particles. Outer membrane vesicles (OMVs) are produced by Gram-negative bacteria and play a key role in host pathogen interaction. Recently, evidence has emerged that OMVs differentially package small RNAs. In this study, we show that Pf4 are decorated with OMVs that remain affixed to Pf4 despite of purification steps. These phages are endocytosed by human cells and delivered to endosomal vesicles. We demonstrate that short RNAs within the OMVs form hairpin structures that trigger TLR3-dependent type I interferon production and antagonize production of antibacterial cytokines and chemokines. In particular, Pf4 phages inhibit CXCL5, preventing efficient neutrophil chemotaxis in response to endotoxin. Moreover, blocking IFNAR or TLR3 signaling abrogates the effect of Pf4 bound to OMVs on macrophage activation. In a murine acute pneumonia model, mice treated with Pf4 associated with OMVs show significantly less neutrophil infiltration in BAL fluid than mice treated with purified Pf4. These changes in macrophage phenotype are functionally relevant: conditioned media from cells exposed to Pf4 decorated with OMVs are significantly less effective at inducing neutrophil migration in vitro and in vivo. These results suggest that Pf4 phages alter innate immunity to bacterial endotoxin and OMVs, potentially dampening inflammation at sites of bacterial colonization or infection.
Insights
Bacteriophages (Pf4) decorated with bacterial outer membrane vesicles dampen innate immune responses to endotoxin by inhibiting neutrophil migration. This suggests a novel mechanism for immune modulation during Pseudomonas aeruginosa infections.
Area of Science:
- Immunology
- Microbiology
- Bacteriophage Research
Background:
- Pseudomonas aeruginosa is a significant pathogen, especially in cystic fibrosis patients.
- Bacteriophages, like Pf4, are present at infection sites but their immune impact is unclear.
- Previous work showed Pf4 modifies innate immunity via TLR3 signaling, but mechanisms were unknown.
Purpose of the Study:
- To elucidate the mechanisms by which Pf4 bacteriophages modulate mammalian innate immune responses.
- To investigate the role of outer membrane vesicles (OMVs) attached to Pf4 in immune modulation.
- To determine the effect of Pf4-OMV complexes on inflammatory responses to bacterial endotoxin.
Main Methods:
- Characterization of Pf4 bacteriophages decorated with OMVs.
- Endocytosis studies of Pf4-OMV complexes by human immune cells.
- Analysis of RNA content within OMVs and their effect on TLR3 signaling and cytokine production.
- Assessment of neutrophil chemotaxis and macrophage activation in vitro and in vivo (murine pneumonia model).
Main Results:
- Pf4 bacteriophages are inherently decorated with bacterial OMVs.
- Short RNAs within OMVs trigger TLR3-dependent type I interferon production and suppress antibacterial cytokines (e.g., CXCL5).
- Pf4-OMV complexes inhibit neutrophil migration and reduce inflammation in a murine pneumonia model.
- Blocking TLR3 or IFNAR signaling abrogates the immune-dampening effects of Pf4-OMVs.
Conclusions:
- Pf4 bacteriophages associated with OMVs actively dampen innate immune responses to bacterial endotoxin.
- This immune modulation involves TLR3-dependent signaling triggered by OMV-derived RNAs, leading to reduced neutrophil recruitment.
- Pf4-OMVs represent a novel mechanism for immune evasion or modulation at sites of P. aeruginosa colonization or infection.
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