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Isolation and Chemical Characterization of Lipid A from Gram-negative Bacteria
Published on: September 16, 2013
Host lysolipid differentially modulates virulence factor expression and antimicrobial susceptibility in Pseudomonas
James C McSorley1, Alison C MacFadyen2, Leena Kerr3
1Strathclyde Institute of Pharmacy and Biomedical Sciences, University of Strathclyde, Glasgow, UK.
Abstract:
Lysophosphatidic acid (LPA) occurs naturally in inflammatory exudates and has previously been shown to increase the susceptibility of Pseudomonas aeruginosa to β-lactam antibiotics whilst concomitantly reducing accumulation of the virulence factors pyoverdine and elastase. Here it is demonstrated that LPA can also exert inhibitory effects upon pyocyanin production in P. aeruginosa, as well as influencing susceptibility to a wide range of chemically diverse non β-lactam antimicrobials. Most strikingly, LPA markedly antagonizes the effect of the polycationic antibiotics colistin and tobramycin at a concentration of 250 µg ml-1 whilst conversely enhancing their efficacy at the lower concentration of 8.65 µg ml-1, approximating the maximal physiological concentrations found in inflammatory exudates. Transcriptomic responses of the virulent strain UCBPP-PA14 to LPA were analysed using RNA-sequencing along with BioLog phenoarrays and whole cell assays in attempts to delineate possible mechanisms underlying these effects. The results strongly suggest involvement of LPA-induced carbon catabolite repression together with outer-membrane (OM) stress responses whilst raising questions about the effect of LPA upon other P. aeruginosa virulence factors including type III secretion. This could have clinical relevance as it suggests that endogenous LPA may, at concentrations found in vivo, differentially modulate antibiotic susceptibility of P. aeruginosa whilst simultaneously regulating expression of virulence factors, thereby influencing host-pathogen interactions during infection. The possibility of applying exogenous LPA locally as an enhancer of select antibiotics merits further investigation.
Insights
Lysophosphatidic acid (LPA) alters *Pseudomonas aeruginosa* antibiotic susceptibility and virulence factor production. Endogenous LPA may impact infections by modulating bacterial responses in inflammatory environments.
Area of Science:
- Microbiology
- Infectious Diseases
- Pharmacology
Background:
- Lysophosphatidic acid (LPA) is present in inflammatory exudates.
- LPA affects *Pseudomonas aeruginosa* (PA) susceptibility to β-lactam antibiotics.
- LPA reduces PA virulence factors pyoverdine and elastase.
Purpose of the Study:
- To investigate LPA's effects on pyocyanin production and susceptibility to non-β-lactam antimicrobials in *P. aeruginosa*.
- To analyze LPA's impact on colistin and tobramycin efficacy at different concentrations.
- To explore the mechanisms underlying LPA's influence on *P. aeruginosa*.
Main Methods:
- *P. aeruginosa* strain UCBPP-PA14 was treated with LPA.
- Susceptibility to various antibiotics was tested.
- Pyocyanin production was measured.
- RNA-sequencing was used for transcriptomic analysis.
- BioLog phenoarrays and whole cell assays were performed.
Main Results:
- LPA inhibits pyocyanin production in *P. aeruginosa*.
- LPA differentially affects susceptibility to diverse antimicrobials.
- LPA antagonizes colistin and tobramycin at high concentrations but enhances efficacy at low, physiological concentrations.
- Transcriptomic data suggest LPA induces carbon catabolite repression and outer-membrane stress responses.
Conclusions:
- Endogenous LPA at *in vivo* concentrations can modulate *P. aeruginosa* antibiotic susceptibility and virulence factor expression.
- LPA's dual role in modulating antibiotic efficacy and virulence factors has clinical relevance for host-pathogen interactions.
- Further research into exogenous LPA as a potential antibiotic enhancer is warranted.
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