| Literature DB >> 29021784 |
Daniel Pletzer1, Heidi Wolfmeier1, Manjeet Bains1, Robert E W Hancock1.
Abstract
Microorganisms continuously monitor their surroundings and adaptively respond to environmental cues. One way to cope with various stress-related situations is through the activation of the stringent stress response pathway. In Pseudomonas aeruginosa this pathway is controlled and coordinated by the activity of the RelA and SpoT enzymes that metabolize the small nucleotide secondary messenger molecule (p)ppGpp. Intracellular ppGpp concentrations are crucial in mediating adaptive responses and virulence. Targeting this cellular stress response has recently been the focus of an alternative approach to fight antibiotic resistant bacteria. Here, we examined the role of the stringent response in the virulence of P. aeruginosa PAO1 and the Liverpool epidemic strain LESB58. A ΔrelA/ΔspoT double mutant showed decreased cytotoxicity toward human epithelial cells, exhibited reduced hemolytic activity, and caused down-regulation of the expression of the alkaline protease aprA gene in stringent response mutants grown on blood agar plates. Promoter fusions of relA or spoT to a bioluminescence reporter gene revealed that both genes were expressed during the formation of cutaneous abscesses in mice. Intriguingly, virulence was attenuated in vivo by the ΔrelA/ΔspoT double mutant, but not the relA mutant nor the ΔrelA/ΔspoT complemented with either gene. Treatment of a cutaneous P. aeruginosa PAO1 infection with anti-biofilm peptides increased animal welfare, decreased dermonecrotic lesion sizes, and reduced bacterial numbers recovered from abscesses, resembling the phenotype of the ΔrelA/ΔspoT infection. It was previously demonstrated by our lab that ppGpp could be targeted by synthetic peptides; here we demonstrated that spoT promoter activity was suppressed during cutaneous abscess formation by treatment with peptides DJK-5 and 1018, and that a peptide-treated relA complemented stringent response double mutant strain exhibited reduced peptide susceptibility. Overall these data strongly indicated that synthetic peptides target the P. aeruginosa stringent response in vivo and thus offer a promising novel therapeutic approach.Entities:
Keywords: Anti-biofilm peptides; Pseudomonas; Stringent response; mouse abscess infections
Year: 2017 PMID: 29021784 PMCID: PMC5623667 DOI: 10.3389/fmicb.2017.01867
Source DB: PubMed Journal: Front Microbiol ISSN: 1664-302X Impact factor: 5.640
Bacterial strains used in this study.
| Strain | Relevant characteristics or genotypea | Reference or source |
|---|---|---|
| XL1-Blue | recA1 endA1 gyrA96 thi-1 hsdR17 (rK- mK+) supE44 relA1 lac,[F′ proAB lacIq ZΔM15Tn10 (Tcr)] | Stratagene |
| ST18 | pro thi hsdR+ Tpr Smr; chromosome::RP4-2 Tc::Mu-Km::Tn7/aaapir ΔhemA | |
| Sm17λpir | Tpr Smr recA, thi, pro, hsdR-M+RP4: 2-Tc:Mu: Km, aaapir phage lysogen | |
| PAO1 | Laboratory wild-type strain | |
| PAO1.Δ | This study | |
| PAO1.Δ | Δ | This study |
| PAO1.Δ | Δ | This study |
| PAO1.Δ | Δ | This study |
| PAO1.( | Chromosomal insertion of the | This study |
| PAO1.( | Chromosomal insertion of the | This study |
| PAO1.( | Chromosomal insertion of the | This study |
| LESB58 | Liverpool Epidemic Strain isolate | |
| LESB58.Δ | This study | |
| LESB58.Δ | Δ | This study |
| LESB58.Δ | Δ | This study |
| LESB58.Δ | Δ | This study |
Relative fold-changes of P. aeruginosa PAO1 ΔrelA/ΔspoT and LESB58 ΔrelA/ΔspoT mRNA expression compared to their respective wild-type levels of expression.
| Gene | Locus (PAO1/LESB58) | Virulence factor/description | Fold change in Δ | |
|---|---|---|---|---|
| PAO1 | LESB58 | |||
| PA1249/PALES_40631 | Alkaline protease, Type I secretion | -11.2 | -4.8 | |
| PA3724/PALES_12581 | Elastase type II secretion system substrate | -10.6 | 1.8 | |
| PA2570/PALES_27241 | Galactose binding lectin A | -10.2 | -1.7 | |
| PA4211/PALES_07161 | Phenanzine biosynthesis type II secretion | -4.3 | 1.2 | |
| PA3478/PALES_15341 | Rhamnolipid rhamnosyltransferase chain B | -3.3 | -1.5 | |
| PA0026/PALES_00251 | Phospholipase C, Type II secretion | -3.0 | -1.1 | |
| PA3996/PALES_22021 | Lipase A type II secretion system substrate | -1.4 | -2.7 | |
| PA3841/PALES_11331 | Exoenzyme S type III secretion substrate | -1.4 | n.d. | |
| PA1716/PALES_36131 | Type III secretion outer membrane protein | 1.3 | 1.2 | |
| PA4230/PALES_06971 | Pyochelin siderophore biosynthesis | 1.4 | -1.5 | |
| PA1148/PALES_41711 | Exotoxin A type II secretion system substrate | 1.8 | -2.4 | |
| PA1722/PALES_36071 | Type III secretion export protein | 2.1 | n.d. | |
| PA2397/PALES_28991 | Pyoverdine siderophore ABC transporter | 2.1 | -2.0 | |
| PA1714/PALES_36151 | Type III secretion system negative regulator | 3.8 | 1.6 | |
| PA1719/PALES_36101 | Type III secretion needle | 4.3 | 1.3 | |
| PA1713/PALES_36161 | Type III secretion system transcriptional activator | 4.6 | 1.2 | |