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Antimicrobial Peptides Produced by Selective Pressure Incorporation of Non-canonical Amino Acids
Published on: May 4, 2018
Identification of Proteus mirabilis mutants with increased sensitivity to antimicrobial peptides
1Department of Microbiology, University of Texas Health Science Center at San Antonio, San Antonio, Texas 78229-3900, USA.
Abstract:
Antimicrobial peptides (APs) are important components of the innate defenses of animals, plants, and microorganisms. However, some bacterial pathogens are resistant to the action of APs. For example, Proteus mirabilis is highly resistant to the action of APs, such as polymyxin B (PM), protegrin, and the synthetic protegrin analog IB-367. To better understand this resistance, a transposon mutagenesis approach was used to generate P. mirabilis mutants sensitive to APs. Four unique PM-sensitive mutants of P. mirabilis were identified (these mutants were >2 to >128 times more sensitive than the wild type). Two of these mutants were also sensitive to IB-367 (16 and 128 times more sensitive than the wild type). Lipopolysaccharide (LPS) profiles of the PM- and protegrin-sensitive mutants demonstrated marked differences in both the lipid A and O-antigen regions, while the PM-sensitive mutants appeared to have alterations of either lipid A or O antigen. Matrix-assisted laser desorption ionization-time of flight mass spectrometry analysis of the wild-type and PM-sensitive mutant lipid A showed species with one or two aminoarabinose groups, while lipid A from the PM- and protegrin-sensitive mutants was devoid of aminoarabinose. When the mutants were streaked on an agar-containing medium, the swarming motility of the PM- and protegrin-sensitive mutants was completely inhibited and the swarming motility of the mutants sensitive to only PM was markedly decreased. DNA sequence analysis of the mutagenized loci revealed similarities to an O-acetyltransferase (PM and protegrin sensitive) and ATP synthase and sap loci (PM sensitive). These data further support the role of LPS modifications as an elaborate mechanism in the resistance of certain bacterial species to APs and suggest that LPS surface charge alterations may play a role in P. mirabilis swarming motility.
Insights
This study identifies Proteus mirabilis mutants sensitive to antimicrobial peptides (APs). Findings reveal lipopolysaccharide (LPS) modifications are key to AP resistance and affect bacterial swarming motility.
Area of Science:
- Microbiology
- Biochemistry
- Genetics
Background:
- Antimicrobial peptides (APs) are crucial for innate immunity across diverse organisms.
- Certain bacterial pathogens, like Proteus mirabilis, exhibit significant resistance to APs, posing clinical challenges.
- Understanding the mechanisms of AP resistance is vital for developing new therapeutic strategies.
Purpose of the Study:
- To identify genetic determinants of antimicrobial peptide (AP) resistance in Proteus mirabilis.
- To elucidate the role of lipopolysaccharide (LPS) modifications in AP resistance and swarming motility.
Main Methods:
- Transposon mutagenesis was employed to generate AP-sensitive mutants of P. mirabilis.
- Lipopolysaccharide (LPS) profiles were analyzed using mass spectrometry.
- DNA sequencing identified mutated genes associated with AP sensitivity.
Main Results:
- Four P. mirabilis mutants with increased sensitivity to polymyxin B (PM) were generated; two were also sensitive to protegrin analog IB-367.
- LPS analysis revealed alterations in lipid A and O-antigen regions in sensitive mutants.
- Mutants showed defects in swarming motility, correlating with LPS modifications and reduced aminoarabinose in lipid A.
Conclusions:
- Lipopolysaccharide (LPS) modifications, particularly in lipid A and O-antigen, are a significant mechanism for bacterial resistance to antimicrobial peptides (APs).
- Alterations in LPS surface charge may influence P. mirabilis swarming motility.
- The identified genes provide targets for understanding and potentially overcoming AP resistance.

