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Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Bovine NK-lysin peptides exert potent antimicrobial activity against multidrug-resistant Salmonella outbreak isolates
Rohana P Dassanayake1, Briony M Atkinson2, Adam S Mullis3
1Agricultural Research Service, National Animal Disease Center, Ruminant Diseases and Immunology Research Unit, USDA, Ames, IA, USA. rohana.dassanayake@usda.gov.
Abstract:
Multidrug-resistant (MDR) Salmonella is a threat to public health. Non-antibiotic therapies could serve as important countermeasures to control MDR Salmonella outbreaks. In this study, antimicrobial activity of cationic α-helical bovine NK-lysin-derived antimicrobial peptides was evaluated against MDR Salmonella outbreak isolates. NK2A and NK2B strongly inhibited MDR Salmonella growth while NK1 and NK2C showed minimum-to-no growth inhibition. Scrambled-NK2A, which is devoid of α-helicity but has the same net positive charge as NK2A, also failed to inhibit bacterial growth. Incubation of negatively charged MDR Salmonella with NK2A showed increased Zeta potential, indicating bacterial-peptide electrostatic attraction. Confocal and transmission electron microscopy studies revealed NK2A-mediated damage to MDR Salmonella membranes. LPS inhibited NK2A-mediated growth suppression in a dose-dependent response, suggesting irreversible NK2A-LPS binding. LPS-NK2A binding and bacterial membrane disruption was also confirmed via electron microscopy using gold nanoparticle-NK2A conjugates. Finally, NK2A-loaded polyanhydride nanoparticles showed sustained peptide delivery and anti-bacterial activity. Together, these findings indicate that NK2A α-helicity and positive charge are prerequisites for antimicrobial activity and that MDR Salmonella killing is mediated by direct interaction of NK2A with LPS and the inner membrane, leading to bacterial membrane permeabilization. With further optimization using nano-carriers, NK2A has the potential to become a potent anti-MDR Salmonella agent.
Insights
Novel antimicrobial peptides show potent activity against multidrug-resistant (MDR) Salmonella. The peptide NK2A, with its α-helical structure and positive charge, effectively damages bacterial membranes, offering a promising non-antibiotic therapy for MDR Salmonella infections.
Area of Science:
- Microbiology
- Biochemistry
- Materials Science
Background:
- Multidrug-resistant (MDR) Salmonella poses a significant public health risk.
- Non-antibiotic therapeutic strategies are crucial for combating MDR bacterial infections.
Purpose of the Study:
- To evaluate the antimicrobial efficacy of cationic α-helical bovine NK-lysin-derived peptides against MDR Salmonella.
- To elucidate the mechanism of action of effective peptides, focusing on membrane interaction and potential therapeutic applications.
Main Methods:
- Antimicrobial activity assays against MDR Salmonella isolates.
- Zeta potential measurements to assess electrostatic interactions.
- Confocal and transmission electron microscopy for membrane damage visualization.
- Inhibition studies with lipopolysaccharide (LPS) and nanoparticle formulations.
Main Results:
- NK2A and NK2B peptides demonstrated strong inhibition of MDR Salmonella growth.
- NK2A's antimicrobial activity was dependent on its α-helicity and positive charge.
- NK2A induced membrane damage through interaction with LPS and the inner membrane, leading to permeabilization.
- NK2A-loaded nanoparticles provided sustained delivery and antibacterial effects.
Conclusions:
- NK2A's α-helicity and positive charge are essential for its potent antimicrobial activity against MDR Salmonella.
- The peptide functions by disrupting the bacterial membrane, particularly through interaction with LPS.
- NK2A, especially when formulated with nanocarriers, represents a promising candidate for developing novel anti-MDR Salmonella therapies.
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