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Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Cationic antimicrobial peptide resistance in Neisseria meningitidis
Yih-Ling Tzeng1, Karita D Ambrose, Susu Zughaier
1Department of Veterans Affairs Medical Center, Research 151, Room 5A188, 1670 Clairmont Road, Decatur, GA 30033, USA.
Abstract:
Cationic antimicrobial peptides (CAMPs) are important components of the innate host defense system against microbial infections and microbial products. However, the human pathogen Neisseria meningitidis is intrinsically highly resistant to CAMPs, such as polymyxin B (PxB) (MIC > or = 512 microg/ml). To ascertain the mechanisms by which meningococci resist PxB, mutants that displayed increased sensitivity (> or =4-fold) to PxB were identified from a library of mariner transposon mutants generated in a meningococcal strain, NMB. Surprisingly, more than half of the initial PxB-sensitive mutants had insertions within the mtrCDE operon, which encodes proteins forming a multidrug efflux pump. Additional PxB-sensitive mariner mutants were identified from a second round of transposon mutagenesis performed in an mtr efflux pump-deficient background. Further, a mutation in lptA, the phosphoethanolamine (PEA) transferase responsible for modification of the lipid A head groups, was identified to cause the highest sensitivity to PxB. Mutations within the mtrD or lptA genes also increased meningococcal susceptibility to two structurally unrelated CAMPs, human LL-37 and protegrin-1. Consistently, PxB neutralized inflammatory responses elicited by the lptA mutant lipooligosaccharide more efficiently than those induced by wild-type lipooligosaccharide. mariner mutants with increased resistance to PxB were also identified in NMB background and found to contain insertions within the pilMNOPQ operon involved in pilin biogenesis. Taken together, these data indicated that meningococci utilize multiple mechanisms including the action of the MtrC-MtrD-MtrE efflux pump and lipid A modification as well as the type IV pilin secretion system to modulate levels of CAMP resistance. The modification of meningococcal lipid A head groups with PEA also prevents neutralization of the biological effects of endotoxin by CAMP.
Insights
Neisseria meningitidis resists cationic antimicrobial peptides (CAMPs) through multiple mechanisms. These include the MtrC-MtrD-MtrE efflux pump, lipid A modification, and the type IV pilin secretion system, all contributing to CAMP resistance.
Area of Science:
- Microbiology
- Immunology
- Molecular Biology
Background:
- Cationic antimicrobial peptides (CAMPs) are crucial for innate immunity against microbes.
- Neisseria meningitidis exhibits high intrinsic resistance to CAMPs like polymyxin B (PxB).
Purpose of the Study:
- To elucidate the mechanisms underlying Neisseria meningitidis resistance to CAMPs.
- To identify specific genetic factors contributing to CAMP resistance in N. meningitidis.
Main Methods:
- Generation and screening of mariner transposon mutant libraries in N. meningitidis.
- Phenotypic analysis of mutant susceptibility to CAMPs (PxB, LL-37, protegrin-1).
- Identification of mutations in efflux pump genes (mtrCDE), lipid A modification genes (lptA), and pilin biogenesis genes (pilMNOPQ).
Main Results:
- Mutations in the mtrCDE operon and lptA significantly increased susceptibility to multiple CAMPs.
- Loss of lptA, a phosphoethanolamine (PEA) transferase, conferred the highest PxB sensitivity.
- Mutations in pilMNOPQ were associated with increased PxB resistance.
- PEA modification of lipid A prevents CAMP-mediated neutralization of endotoxin effects.
Conclusions:
- Neisseria meningitidis employs a multi-faceted defense against CAMPs, involving the MtrC-MtrD-MtrE efflux pump, lipid A modification, and type IV pilin secretion.
- Lipid A modification with PEA is a key mechanism for evading CAMPs and maintaining endotoxin activity.
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