» Articles » PMID: 24071593

A Thermodynamic Approach to Alamethicin Pore Formation

Overview
Specialties Biochemistry
Biophysics
Date 2013 Sep 28
PMID 24071593
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

The structure and energetics of alamethicin Rf30 monomer to nonamer in cylindrical pores of 5 to 11Å radius are investigated using molecular dynamics simulations in an implicit membrane model that includes the free energy cost of acyl chain hydrophobic area exposure. Stable, low energy pores are obtained for certain combinations of radius and oligomeric number. The trimer and the tetramer formed 6Å pores that appear closed while the larger oligomers formed open pores at their optimal radius. The hexamer in an 8Å pore and the octamer in an 11Å pore give the lowest effective energy per monomer. However, all oligomers beyond the pentamer have comparable energies, consistent with the observation of multiple conductance levels. The results are consistent with the widely accepted "barrel-stave" model. The N terminal portion of the molecule exhibits smaller tilt with respect to the membrane normal than the C terminal portion, resulting in a pore shape that is a hybrid between a funnel and an hourglass. Transmembrane voltage has little effect on the structure of the oligomers but enhances or decreases their stability depending on its orientation. Antiparallel bundles are lower in energy than the commonly accepted parallel ones and could be present under certain experimental conditions. Dry aggregates (without an aqueous pore) have lower average effective energy than the corresponding aggregates in a pore, suggesting that alamethicin pores may be excited states that are stabilized in part by voltage and in part by the ion flow itself.

Citing Articles

Determining the Functional Oligomeric State of Membrane-Associated Protein Oligomers Forming Membrane Pores on Giant Lipid Vesicles.

Singh V, Macharova S, Riegerova P, Steringer J, Muller H, Lolicato F Anal Chem. 2023; 95(23):8807-8815.

PMID: 37148264 PMC: 10267887. DOI: 10.1021/acs.analchem.2c05692.


The Puzzle of Metabolite Exchange and Identification of Putative Octotrico Peptide Repeat Expression Regulators in the Nascent Photosynthetic Organelles of .

Oberleitner L, Poschmann G, Macorano L, Schott-Verdugo S, Gohlke H, Stuhler K Front Microbiol. 2020; 11:607182.

PMID: 33329499 PMC: 7729196. DOI: 10.3389/fmicb.2020.607182.


Computational studies of peptide-induced membrane pore formation.

Lipkin R, Lazaridis T Philos Trans R Soc Lond B Biol Sci. 2017; 372(1726).

PMID: 28630158 PMC: 5483521. DOI: 10.1098/rstb.2016.0219.


Discrimination of Native-like States of Membrane Proteins with Implicit Membrane-based Scoring Functions.

Dutagaci B, Wittayanarakul K, Mori T, Feig M J Chem Theory Comput. 2017; 13(6):3049-3059.

PMID: 28475346 PMC: 5512695. DOI: 10.1021/acs.jctc.7b00254.


Computational prediction of the optimal oligomeric state for membrane-inserted β-barrels of protegrin-1 and related mutants.

Lipkin R, Lazaridis T J Pept Sci. 2017; 23(4):334-345.

PMID: 28382709 PMC: 5689075. DOI: 10.1002/psc.2992.


References
1.
Keller S, Bezrukov S, Gruner S, Tate M, Vodyanoy I, Parsegian V . Probability of alamethicin conductance states varies with nonlamellar tendency of bilayer phospholipids. Biophys J. 1993; 65(1):23-7. PMC: 1225696. DOI: 10.1016/S0006-3495(93)81040-3. View

2.
Salnikov E, De Zotti M, Formaggio F, Li X, Toniolo C, ONeil J . Alamethicin topology in phospholipid membranes by oriented solid-state NMR and EPR spectroscopies: a comparison. J Phys Chem B. 2009; 113(10):3034-42. DOI: 10.1021/jp8101805. View

3.
Maisch D, Wadhwani P, Afonin S, Bottcher C, Koksch B, Ulrich A . Chemical labeling strategy with (R)- and (S)-trifluoromethylalanine for solid state 19F NMR analysis of peptaibols in membranes. J Am Chem Soc. 2009; 131(43):15596-7. DOI: 10.1021/ja9067595. View

4.
Chiriac R, Luchian T . pH modulation of transport properties of alamethicin oligomers inserted in zwitterionic-based artificial lipid membranes. Biophys Chem. 2007; 130(3):139-47. DOI: 10.1016/j.bpc.2007.08.009. View

5.
Pieta P, Mirza J, Lipkowski J . Direct visualization of the alamethicin pore formed in a planar phospholipid matrix. Proc Natl Acad Sci U S A. 2012; 109(52):21223-7. PMC: 3535624. DOI: 10.1073/pnas.1201559110. View