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Bacteria May Cope Differently from Similar Membrane Damage Caused by the Australian Tree Frog Antimicrobial Peptide
Marc-Antoine Sani1, Sónia Troeira Henriques2, Daniel Weber3
1From the School of Chemistry, Bio21 Institute, The University of Melbourne, Parkville, Victoria 3010, Australia and msani@unimelb.edu.au.
Abstract:
Maculatin 1.1 (Mac1) is an antimicrobial peptide from the skin of Australian tree frogs and is known to possess selectivity toward Gram-positive bacteria. Although Mac1 has membrane disrupting activity, it is not known how Mac1 selectively targets Gram-positive over Gram-negative bacteria. The interaction of Mac1 with Escherichia coli, Staphylococcus aureus, and human red blood cells (hRBC) and with their mimetic model membranes is here reported. The peptide showed a 16-fold greater growth inhibition activity against S. aureus (4 μM) than against E. coli (64 μM) and an intermediate cytotoxicity against hRBC (30 μM). Surprisingly, Sytox Green uptake monitored by flow cytometry showed that Mac1 compromised both bacterial membranes with similar efficiency at ∼20-fold lower concentration than the reported minimum inhibition concentration against S. aureus. Mac1 also reduced the negative potential of S. aureus and E. coli membrane with similar efficacy. Furthermore, liposomes mimicking the cell membrane of S. aureus (POPG/TOCL) and E. coli (POPE/POPG) were lysed at similar concentrations, whereas hRBC-like vesicles (POPC/SM/Chol) remained mostly intact in the presence of Mac1. Remarkably, when POPG/TOCL and POPE/POPG liposomes were co-incubated, Mac1 did not induce leakage from POPE/POPG liposomes, suggesting a preference toward POPG/TOCL membranes that was supported by surface plasma resonance assays. Interestingly, circular dichroism spectroscopy showed a similar helical conformation in the presence of the anionic liposomes but not the hRBC mimics. Overall, the study showed that Mac1 disrupts bacterial membranes in a similar fashion before cell death events and would preferentially target S. aureus over E. coli or hRBC membranes.
Insights
Maculatin 1.1 (Mac1) antimicrobial peptide targets Gram-positive bacteria like Staphylococcus aureus more effectively than Gram-negative E. coli. It disrupts bacterial membranes similarly but shows preference for S. aureus membranes over others.
Area of Science:
- Biochemistry
- Microbiology
- Peptide Science
Background:
- Maculatin 1.1 (Mac1) is an antimicrobial peptide from Australian tree frogs.
- Mac1 exhibits selectivity towards Gram-positive bacteria.
- The precise mechanism of Mac1's selective targeting of Gram-positive over Gram-negative bacteria remains unclear.
Purpose of the Study:
- To investigate the interaction of Mac1 with Gram-positive (Staphylococcus aureus) and Gram-negative (Escherichia coli) bacteria.
- To determine Mac1's membrane-disrupting activity and selectivity using model membranes.
- To compare Mac1's effects on bacterial membranes versus human red blood cells (hRBC).
Main Methods:
- Bacterial growth inhibition assays.
- Sytox Green uptake monitored by flow cytometry.
- Liposome leakage assays using model membranes mimicking bacterial and hRBC membranes.
- Surface plasmon resonance and circular dichroism spectroscopy.
Main Results:
- Mac1 demonstrated 16-fold greater growth inhibition against S. aureus than E. coli.
- Mac1 compromised both bacterial membranes similarly at low concentrations, independent of minimum inhibitory concentrations.
- Mac1 preferentially lysed liposomes mimicking S. aureus membranes (POPG/TOCL) over E. coli (POPE/POPG) or hRBC mimics (POPC/SM/Chol) when co-incubated.
Conclusions:
- Mac1 disrupts bacterial membranes similarly before cell death.
- Mac1 exhibits a preference for targeting Gram-positive bacterial membranes (S. aureus) over Gram-negative bacteria (E. coli) and human red blood cells.
- The peptide adopts a helical conformation in the presence of anionic bacterial membranes but not hRBC mimics.
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