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.

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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