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Methods to Inhibit Bacterial Pyomelanin Production and Determine the Corresponding Increase in Sensitivity to Oxidative Stress
Published on: August 31, 2015
Increased Innate Immune Susceptibility in Hyperpigmented Bacteriophage-Resistant Mutants of Pseudomonas aeruginosa
Nitasha D Menon1,2, Samuel Penziner3, Elizabeth T Montaño2
1School of Biotechnology, Amrita Vishwa Vidyapeetham, Amritapuri, Kerala, India.
Abstract:
Bacteriophage (phage) therapy is an alternative to traditional antibiotic treatments that is particularly important for multidrug-resistant pathogens, such as Pseudomonas aeruginosa. Unfortunately, phage resistance commonly arises during treatment as bacteria evolve to survive phage predation. During in vitro phage treatment of a P. aeruginosa-type strain, we observed the emergence of phage-resistant mutants with brown pigmentation that was indicative of pyomelanin. As increased pyomelanin (due to hmgA gene mutation) was recently associated with enhanced resistance to hydrogen peroxide and persistence in experimental lung infection, we questioned if therapeutic phage applications could inadvertently select for hypervirulent populations. Pyomelanogenic phage-resistant mutants of P. aeruginosa PAO1 were selected for upon treatment with three distinct phages. Phage-resistant pyomelanogenic mutants did not possess increased survival of pyomelanogenic ΔhmgA in hydrogen peroxide. At the genomic level, large (~300 kb) deletions in the phage-resistant mutants resulted in the loss of ≥227 genes, many of which had roles in survival, virulence, and antibiotic resistance. Phage-resistant pyomelanogenic mutants were hypersusceptible to cationic peptides LL-37 and colistin and were more easily cleared in human whole blood, serum, and a murine infection model. Our findings suggest that hyperpigmented phage-resistant mutants that may arise during phage therapy are markedly less virulent than their predecessors due to large genomic deletions. Thus, their existence does not present a contraindication to using anti-pseudomonal phage therapy, especially considering that these mutants develop drug susceptibility to the familiar FDA-approved antibiotic, colistin.
Insights
Phage therapy for Pseudomonas aeruginosa can lead to resistant mutants. However, these mutants showed reduced virulence and increased susceptibility to antibiotics like colistin, suggesting phage therapy remains a viable option.
Area of Science:
- Microbiology
- Genetics
- Infectious Diseases
Background:
- Bacteriophage (phage) therapy offers an alternative to antibiotics for multidrug-resistant pathogens like Pseudomonas aeruginosa.
- Phage resistance is a common challenge, leading to bacterial evolution and potential treatment failure.
Purpose of the Study:
- To investigate if phage therapy inadvertently selects for hypervirulent Pseudomonas aeruginosa populations.
- To characterize the virulence and genomic changes in phage-resistant mutants.
Main Methods:
- Treatment of Pseudomonas aeruginosa with three distinct phages in vitro.
- Selection and characterization of phage-resistant, pyomelanogenic mutants.
- Genomic analysis to identify deletions and gene loss.
- Assessment of mutant survival in hydrogen peroxide, susceptibility to cationic peptides, and clearance in human blood and a murine infection model.
Main Results:
- Phage-resistant mutants exhibited brown pigmentation, indicating pyomelanogenesis.
- These mutants did not show increased survival in hydrogen peroxide.
- Large genomic deletions (~300 kb) were observed in resistant mutants, leading to the loss of over 227 genes.
- Resistant mutants were hypersusceptible to LL-37 and colistin and were cleared more easily in vivo.
Conclusions:
- Hyperpigmented phage-resistant mutants arising during phage therapy are significantly less virulent due to large genomic deletions.
- These mutants regain susceptibility to antibiotics like colistin.
- Phage therapy for Pseudomonas aeruginosa is not contraindicated by the emergence of these less virulent mutants.
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