Literature DB >> 20403332

Antimicrobial peptides in toroidal and cylindrical pores.

Maja Mihajlovic1, Themis Lazaridis.   

Abstract

Antimicrobial peptides (AMPs) are small, usually cationic peptides, which permeabilize biological membranes. Their mechanism of action is still not well understood. Here we investigate the preference of alamethicin and melittin for pores of different shapes, using molecular dynamics (MD) simulations of the peptides in pre-formed toroidal and cylindrical pores. When an alamethicin hexamer is initially embedded in a cylindrical pore, at the end of the simulation the pore remains cylindrical or closes if glutamines in the N-termini are not located within the pore. On the other hand, when a melittin tetramer is embedded in toroidal pore or in a cylindrical pore, at the end of the simulation the pore is lined both with peptides and lipid headgroups, and, thus, can be classified as a toroidal pore. These observations agree with the prevailing views that alamethicin forms barrel-stave pores whereas melittin forms toroidal pores. Both alamethicin and melittin form amphiphilic helices in the presence of membranes, but their net charge differs; at pH approximately 7, the net charge of alamethicin is -1 whereas that of melittin is +5. This gives rise to stronger electrostatic interactions of melittin with membranes than those of alamethicin. The melittin tetramer interacts more strongly with lipids in the toroidal pore than in the cylindrical one, due to more favorable electrostatic interactions. Copyright 2010 Elsevier B.V. All rights reserved.

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Year:  2010        PMID: 20403332      PMCID: PMC2885466          DOI: 10.1016/j.bbamem.2010.04.004

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  67 in total

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5.  Melittin-induced bilayer leakage depends on lipid material properties: evidence for toroidal pores.

Authors:  Daniel Allende; S A Simon; Thomas J McIntosh
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6.  Antimicrobial peptide pores in membranes detected by neutron in-plane scattering.

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7.  Conformation of alamethicin in oriented phospholipid bilayers determined by (15)N solid-state nuclear magnetic resonance.

Authors:  M Bak; R P Bywater; M Hohwy; J K Thomsen; K Adelhorst; H J Jakobsen; O W Sørensen; N C Nielsen
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8.  Sizing membrane pores in lipid vesicles by leakage of co-encapsulated markers: pore formation by melittin.

Authors:  A S Ladokhin; M E Selsted; S H White
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9.  Mechanism of alamethicin insertion into lipid bilayers.

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  44 in total

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5.  Engineered cationic antimicrobial peptides to overcome multidrug resistance by ESKAPE pathogens.

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Review 6.  Peptoid drug discovery and optimization via surface X-ray scattering.

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7.  Effects of Peptide Charge, Orientation, and Concentration on Melittin Transmembrane Pores.

Authors:  Almudena Pino-Angeles; Themis Lazaridis
Journal:  Biophys J       Date:  2018-06-19       Impact factor: 4.033

8.  Electropore Formation in Mechanically Constrained Phospholipid Bilayers.

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