Membrane Sterols Modulate the Binding Mode of Amphotericin B without Affecting Its Affinity for a Lipid Bilayer

Anna Neumann, Milosz Wieczor, Joanna Zielinska1

  • 1Department of Pharmaceutical Chemistry, Medical University of Gdansk , Gdansk, Poland.

Insights

Amphotericin B (AmB) insertion into fungal membranes is independent of sterol type. Its antifungal activity may stem from sterol-induced pore formation, not initial membrane binding differences.

Area of Science:

  • Biophysics
  • Computational Chemistry
  • Antimicrobial Drug Discovery

Background:

  • Membrane-active antibiotics target pathogens via cell membrane properties.
  • Amphotericin B (AmB) is a key antifungal drug, but its selectivity and mechanism remain unclear.
  • Sterols like cholesterol and ergosterol modulate membrane properties and antibiotic interactions.

Purpose of the Study:

  • To investigate the relationship between membrane sterol composition and Amphotericin B (AmB) membrane interaction.
  • To determine the molecular basis for AmB's preferential activity against ergosterol-rich fungal membranes.
  • To elucidate AmB's binding mode and insertion energetics into different lipid bilayers.

Main Methods:

  • Molecular dynamics simulations were used to compare AmB's free energy of insertion.
  • Simulations were performed on pure DMPC bilayers and DMPC bilayers containing cholesterol or ergosterol.
  • AmB molecule orientation and free energy profiles were analyzed to determine binding modes and sterol effects.

Main Results:

  • AmB insertion into lipid bilayers was found to be largely independent of membrane sterol composition (cholesterol vs. ergosterol).
  • Sterols influenced lipid packing and induced ordering of AmB molecules along the membrane normal.
  • No stable horizontal adsorption of AmB on the membrane surface was observed.

Conclusions:

  • The higher toxicity of AmB towards fungal membranes is likely due to post-insertion events, such as pore formation.
  • Sterol-induced ordering of AmB may facilitate the assembly of functional transmembrane pores.
  • The study refutes the hypothesis that differential membrane affinity is the primary driver of AmB's antifungal selectivity.

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