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Published on: March 14, 2021
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.
Abstract:
Fungal infections with high mortality rates represent an increasing health risk. The Neosartorya (Aspergillus) fischeri antifungal protein 2 (NFAP2) is a small, cysteine-rich, cationic protein exhibiting potent anti-Candida activity. As the underlying mechanism, pore formation has been demonstrated; however, molecular level details on its membrane disruption action are lacking. Herein, we addressed the lipid binding of NFAP2 using a combined computational and experimental approach to simple lipid compositions with various surface charge properties. Simulation results revealed binding preferences for negatively charged model membranes, where selectivity is mediated by anionic lipid components enriched at the protein binding site but also assisted by zwitterionic lipid species. Several potential binding routes initiated by various anchoring contacts were observed, which resulted in one main binding mode and a few variants, with NFAP2 residing on the membrane surface. Region 10NCPNNCKHKKG20 of the flexible N-terminal part of the protein showed potency to insert into the lipid bilayer, where the disulfide bond-stabilized short motif 11CPNNC15 could play a key role. In addition, several areas, including the beginning of the N-terminal (residues 1-8), played roles in facilitating initial membrane contacts. Besides, individual roles of residues such as Lys24, Lys32, Lys34, and Trp42 were also revealed by the simulations. Combined data demonstrated that the solution conformation was not perturbed markedly upon membrane interaction, and the folded part of the protein also contributed to stabilizing the bound state. Data also highlighted that the binding of NFAP2 to lipid vesicles is sensitively affected by environmental factors such as ionic strength. Electrostatic interactions driven by anionic lipids were found pivotal, explaining the reduced membrane activity observed under high salt conditions. Experimental data supported the lipid-selective binding mechanisms and pointed to salt-dependent effects, particularly to protein-assisted vesicle aggregation at low ionic strength. Our findings can contribute to the development of NFAP2-based anti-Candida agents and studies aiming at future medical use of peptide-based natural antifungal compounds.
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.

