Mapping of the Lipid-Binding Regions of the Antifungal Protein NFAP2 by Exploiting Model Membranes

Olivér Pavela1,2, Tünde Juhász1, Liliána Tóth3

  • 1Institute of Materials and Environmental Chemistry, HUN-REN Research Centre for Natural Sciences, Magyar tudósok körútja 2, Budapest, H-1117, Hungary.

Insights

Neosartorya (Aspergillus) fischeri antifungal protein 2 (NFAP2) binds to negatively charged membranes, with its N-terminal region key for lipid interaction. This understanding aids developing new antifungal agents against Candida.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Computational Biophysics

Background:

  • Fungal infections pose a growing health threat with high mortality rates.
  • Neosartorya (Aspergillus) fischeri antifungal protein 2 (NFAP2) shows potent anti-Candida activity.
  • The precise mechanism of NFAP2's membrane disruption at a molecular level remains unclear.

Purpose of the Study:

  • To investigate the lipid binding mechanism of NFAP2.
  • To elucidate the molecular details of NFAP2's membrane interaction and disruption.
  • To explore the role of lipid composition and environmental factors in NFAP2 binding.

Main Methods:

  • Combined computational (simulations) and experimental approaches.
  • Analysis of NFAP2 interaction with simple lipid model membranes of varying charge.
  • Experimental validation of lipid-selective binding and salt-dependent effects.

Main Results:

  • NFAP2 preferentially binds to negatively charged membranes, involving both anionic and zwitterionic lipids.
  • The N-terminal region, particularly the motif 11CPNNC15, is crucial for membrane insertion.
  • Binding is influenced by ionic strength, with electrostatic interactions being pivotal.

Conclusions:

  • NFAP2's membrane interaction is driven by electrostatic interactions with anionic lipids.
  • The protein's structure remains largely intact upon membrane binding.
  • Findings support the development of NFAP2-based antifungal therapies against Candida.