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Membrane Mediated Antimicrobial and Antitumor Activity of Cathelicidin 6: Structural Insights from Molecular Dynamics
Bikash Ranjan Sahoo1, Toshimichi Fujiwara1
1Laboratory of Molecular Biophysics, Institute for Protein Research, Osaka University, Suita, Osaka, Japan.
Abstract:
The cathelicidin derived bovine antimicrobial peptide BMAP27 exhibits an effective microbicidal activity and moderate cytotoxicity towards erythrocytes. Irrespective of its therapeutic and multidimensional potentiality, the structural studies are still elusive. Moreover, the mechanism of BMAP27 mediated pore formation in heterogeneous lipid membrane systems is poorly explored. Here, we studied the effect of BMAP27 in model cell-membrane systems such as zwitterionic, anionic, thymocytes-like (TLM) and leukemia-like membranes (LLM) by performing molecular dynamics (MD) simulation longer than 100 μs. All-atom MD studies revealed a stable helical conformation in the presence of anionic lipids, however, significant loss of helicity was identified in TLM and zwitterionic systems. A peptide tilt (~45˚) and central kink (at residue F10) was found in anionic and LLM models, respectively, with an average membrane penetration of < 0.5 nm. Coarse-grained (CG) MD analysis on a multi-μs scale shed light on the membrane-dependent peptide and lipid organization. Stable micelle and end-to-end like oligomers were formed in zwitterionic and TLM models, respectively. In contrast, unstable oligomer formation and monomeric BMAP27 penetration were observed in anionic and LLM systems with selective anionic lipid aggregation (in LLM). Peptide penetration up to ~1.5 nm was observed in CG-MD systems with the BMAP27 C-terminal oriented towards the bilayer core. Structural inspection suggested membrane penetration by micelle/end-to-end like peptide oligomers (carpet-model like) in the zwitterionic/TLM systems, and transmembrane-mode (toroidal-pore like) in the anionic/LLM systems, respectively. Structural insights and energetic interpretation in BMAP27 mutant highlighted the role of F10 and hydrophobic residues in mediating a membrane-specific peptide interaction. Free energy profiling showed a favorable (-4.58 kcal mol-1 for LLM) and unfavorable (+0.17 kcal mol-1 for TLM) peptide insertion in anionic and neutral systems, respectively. This determination can be exploited to regulate cell-specific BMAP27 cytotoxicity for the development of potential drugs and antibiotics.
Insights
The bovine antimicrobial peptide BMAP27
Area of Science:
- Biophysics
- Computational Biology
- Antimicrobial Peptides
Background:
- The bovine antimicrobial peptide BMAP27 shows microbicidal activity but its structural behavior and membrane interaction mechanisms are not fully understood.
- Understanding BMAP27's interaction with different lipid membranes is crucial for its therapeutic development.
Purpose of the Study:
- To investigate the structural dynamics and membrane interaction mechanisms of BMAP27 in various model lipid membrane systems.
- To elucidate the membrane-specific pore formation and cytotoxicity of BMAP27 using molecular dynamics simulations.
Main Methods:
- Utilized all-atom and coarse-grained molecular dynamics (MD) simulations exceeding 100 μs.
- Studied BMAP27's behavior in zwitterionic, anionic, thymocytes-like (TLM), and leukemia-like membranes (LLM).
- Analyzed peptide conformation, oligomerization, membrane penetration, and lipid organization.
Main Results:
- BMAP27 adopted different conformations and oligomeric states depending on lipid composition, showing stable helicity in anionic lipids but loss of helicity in zwitterionic/TLM systems.
- Distinct membrane interaction modes were observed: carpet-model-like in zwitterionic/TLM and toroidal-pore-like in anionic/LLM systems.
- Specific residues like F10 and hydrophobic residues were identified as key for membrane-specific interactions, with favorable insertion into anionic LLM.
Conclusions:
- BMAP27's structural and functional mechanisms are highly dependent on the lipid environment of the target membrane.
- The study provides insights into BMAP27's membrane-specific cytotoxicity, suggesting potential for developing targeted antimicrobial drugs.
- Understanding these interactions can guide the design of BMAP27-based therapeutics with regulated cell-specific activity.
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