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Adaptive and Mutational Responses to Peptide Dendrimer Antimicrobials in Pseudomonas aeruginosa
Fatma Ben Jeddou1,2, Léna Falconnet1,2, Alexandre Luscher1,2
1Transplant Infectious Diseases Unit, University Hospitals Geneva, Geneva, Switzerland.
Abstract:
Colistin (polymyxin E) is a last-resort antibiotic against multidrug-resistant isolates of Pseudomonas aeruginosa However, the nephro-toxicity of colistin limits its use, spurring the interest in novel antimicrobial peptides (AMP). Here, we show that the synthetic AMP-dendrimer G3KL (MW 4,531.38 Da, 15 positive charges, MIC = 8 mg/liter) showed faster killing than polymyxin B (Pmx-B) with no detectable resistance selection in P. aeruginosa strain PA14. Spontaneous mutants selected on Pmx-B, harboring loss of function mutations in the PhoQ sensor kinase gene, showed increased Pmx-B MICs and arnB operon expression (4-amino-l-arabinose addition to lipid A), but remained susceptible to dendrimers. Two mutants carrying a missense mutation in the periplasmic loop of the PmrB sensor kinase showed increased MICs for Pmx-B (8-fold) and G3KL (4-fold) but not for the dendrimer T7 (MW 4,885.64 Da, 16 positive charges, MIC = 8 mg/liter). The pmrB mutants showed increased expression of the arnB operon as well as of the speD2-speE2-PA4775 operon, located upstream of pmrAB, and involved in polyamine biosynthesis. Exogenous supplementation with the polyamines spermine and norspermine increased G3KL and T7 MICs in a phoQ mutant background but not in the PA14 wild type. This suggests that both addition of 4-amino-l-arabinose and secretion of polyamines are required to reduce susceptibility to dendrimers, probably neutralizing the negative charges present on the lipid A and the 2-keto-3-deoxyoctulosonic acid (KDO) sugars of the lipopolysaccharide (LPS), respectively. We further show by transcriptome analysis that the dendrimers G3KL and T7 induce adaptive responses through the CprRS two-component system in PA14.
Insights
Synthetic antimicrobial peptides (AMPs) called dendrimers show promise against resistant bacteria like Pseudomonas aeruginosa. These dendrimers are effective even when bacteria develop resistance to last-resort antibiotics such as colistin.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- Colistin is a last-resort antibiotic for multidrug-resistant Pseudomonas aeruginosa but has nephrotoxicity.
- Novel antimicrobial peptides (AMPs) are being explored as alternatives.
Purpose of the Study:
- To evaluate the efficacy of a synthetic AMP-dendrimer, G3KL, against Pseudomonas aeruginosa.
- To investigate the resistance mechanisms of Pseudomonas aeruginosa to colistin and AMP-dendrimers.
Main Methods:
- MIC determination for G3KL, polymyxin B, and T7 against Pseudomonas aeruginosa.
- Selection and characterization of spontaneous mutants resistant to polymyxin B.
- Analysis of gene expression (arnB, speD2-speE2-PA4775) and lipopolysaccharide modification.
- Transcriptome analysis to identify adaptive responses to dendrimers.
Main Results:
- G3KL demonstrated faster killing of Pseudomonas aeruginosa than polymyxin B with no detectable resistance selection.
- Mutants resistant to polymyxin B showed modifications in lipid A (4-amino-l-arabinose) and polyamine biosynthesis but remained susceptible to dendrimers.
- Some pmrB mutants showed reduced susceptibility to G3KL and T7, linked to both 4-amino-l-arabinose addition and polyamine secretion.
- Dendrimers G3KL and T7 induced adaptive responses via the CprRS two-component system.
Conclusions:
- AMP-dendrimers like G3KL and T7 offer a promising alternative to colistin against Pseudomonas aeruginosa.
- Bacterial resistance mechanisms to colistin, involving lipid A modification and polyamine biosynthesis, do not confer cross-resistance to AMP-dendrimers.
- AMP-dendrimers induce distinct adaptive responses in Pseudomonas aeruginosa, highlighting their potential as novel therapeutics.
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