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Published on: May 23, 2021
Mechanistic Divergence and Differential Antibacterial Potency of the Proline-Rich Antimicrobial Peptide B7-005 Across
Adriana Di Stasi1, Sara Capolla1, Martino Morici2
1Department of Life Sciences, University of Trieste, 34127, Trieste, Italy.
Abstract:
The urgent need for new antimicrobials is driving the optimization of proline-rich antimicrobial peptides (PrAMPs) as a basis for novel antibiotics to combat multidrug-resistant pathogens. The PrAMP B7-005 has emerged from this process, displaying a broader spectrum of activity compared to similar native PrAMPs and reduced reliance on the bacterial transporter SbmA for its action. While the compatibility and interactions of B7-005 with various mammalian cell types have been investigated, most information on its molecular mechanism of antibacterial action has so far been limited to Escherichia coli. In this study, we investigated the antimicrobial potency and mechanisms of action of B7-005 across the full panel of ESKAPE pathogens, with E. coli included for comparison (ESKAPE + E). The potential of B7-005 to eradicate these pathogens was evaluated in both planktonic and biofilm forms, revealing distinct bactericidal and anti-biofilm effects across the ESKAPE + E pathogens. B7-005's mechanism of action also varied depending on the target microorganism, ranging from intracellular inhibition of protein synthesis without membrane damage to varying levels of membrane permeabilization. Notably, B7-005 consistently inhibited protein synthesis across all ESKAPE + E pathogens, suggesting a possible combination of lytic and non-lytic mechanisms. Furthermore, biochemical analysis of its inhibitory effect on protein synthesis demonstrated that, despite acquiring membrane-destabilizing properties, B7-005 still blocks ribosome progression into the elongation phase, consistent with Class I PrAMPs. B7-005 thus retains the essential characteristics of native PrAMPs while offering a broadened spectrum of activity, highlighting its potential as a lead compound in the development of new antibiotics.
Insights
The novel proline-rich antimicrobial peptide B7-005 shows broad-spectrum activity against ESKAPE pathogens, inhibiting protein synthesis and eradicating biofilms. This peptide offers potential for new antibiotic development against resistant bacteria.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- The rise of multidrug-resistant pathogens necessitates the development of novel antimicrobial agents.
- Proline-rich antimicrobial peptides (PrAMPs) are a promising class of compounds for antibiotic development.
- The PrAMP B7-005 exhibits enhanced activity and reduced transporter dependence compared to native PrAMPs.
Purpose of the Study:
- To investigate the antimicrobial activity and mechanisms of action of PrAMP B7-005 against the ESKAPE pathogens and *E. coli*.
- To evaluate the efficacy of B7-005 against both planktonic and biofilm forms of these bacteria.
- To elucidate the molecular mechanisms underlying B7-005's antibacterial effects.
Main Methods:
- Antimicrobial susceptibility testing against ESKAPE pathogens and *E. coli*.
- Biofilm eradication assays.
- Analysis of B7-005's mechanism of action, including protein synthesis inhibition and membrane permeabilization studies.
- Biochemical assays to determine effects on ribosome function.
Main Results:
- B7-005 demonstrated potent activity against planktonic and biofilm forms of ESKAPE pathogens and *E. coli*.
- The mechanism of action varied by pathogen, involving intracellular protein synthesis inhibition and/or membrane permeabilization.
- Protein synthesis inhibition was consistently observed across all tested pathogens, with B7-005 blocking ribosome elongation.
- B7-005 exhibited both lytic and non-lytic antimicrobial activities.
Conclusions:
- B7-005 is a potent antimicrobial agent with a broad spectrum of activity against critical pathogens.
- Its mechanism involves inhibition of protein synthesis, characteristic of Class I PrAMPs, alongside membrane-destabilizing properties.
- B7-005 represents a promising lead compound for developing new antibiotics to combat multidrug-resistant infections.
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