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Molecular Mechanism for Gramicidin Dimerization and Dissociation in Bilayers of Different Thickness

Membrane protein functions can be altered by subtle changes in the host lipid bilayer physical properties. Gramicidin channels have emerged as a powerful system for elucidating the underlying mechanisms of membrane protein function regulation through changes in bilayer properties, which are reflecte...

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Detalles Bibliográficos
Autores principales: Sun, Delin, Peyear, Thasin A., Bennett, W. F. Drew, Andersen, Olaf S., Lightstone, Felice C., Ingólfsson, Helgi I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7018991/
https://www.ncbi.nlm.nih.gov/pubmed/31676135
http://dx.doi.org/10.1016/j.bpj.2019.09.044
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author Sun, Delin
Peyear, Thasin A.
Bennett, W. F. Drew
Andersen, Olaf S.
Lightstone, Felice C.
Ingólfsson, Helgi I.
author_facet Sun, Delin
Peyear, Thasin A.
Bennett, W. F. Drew
Andersen, Olaf S.
Lightstone, Felice C.
Ingólfsson, Helgi I.
author_sort Sun, Delin
collection PubMed
description Membrane protein functions can be altered by subtle changes in the host lipid bilayer physical properties. Gramicidin channels have emerged as a powerful system for elucidating the underlying mechanisms of membrane protein function regulation through changes in bilayer properties, which are reflected in the thermodynamic equilibrium distribution between nonconducting gramicidin monomers and conducting bilayer-spanning dimers. To improve our understanding of how subtle changes in bilayer thickness alter the gramicidin monomer and dimer distributions, we performed extensive atomistic molecular dynamics simulations and fluorescence-quenching experiments on gramicidin A (gA). The free-energy calculations predicted a nonlinear coupling between the bilayer thickness and channel formation. The energetic barrier inhibiting gA channel formation was sharply increased in the thickest bilayer (1,2-dierucoyl-sn-glycero-3-phosphocholine). This prediction was corroborated by experimental results on gramicidin channel activity in bilayers of different thickness. To further explore the mechanism of channel formation, we performed extensive unbiased molecular dynamics simulations, which allowed us to observe spontaneous gA dimer formation in lipid bilayers. The simulations revealed structural rearrangements in the gA subunits and changes in lipid packing, as well as water reorganization, that occur during the dimerization process. Together, the simulations and experiments provide new, to our knowledge, insights into the process and mechanism of gramicidin channel formation, as a prototypical example of the bilayer regulation of membrane protein function.
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spelling pubmed-70189912020-10-10 Molecular Mechanism for Gramicidin Dimerization and Dissociation in Bilayers of Different Thickness Sun, Delin Peyear, Thasin A. Bennett, W. F. Drew Andersen, Olaf S. Lightstone, Felice C. Ingólfsson, Helgi I. Biophys J Articles Membrane protein functions can be altered by subtle changes in the host lipid bilayer physical properties. Gramicidin channels have emerged as a powerful system for elucidating the underlying mechanisms of membrane protein function regulation through changes in bilayer properties, which are reflected in the thermodynamic equilibrium distribution between nonconducting gramicidin monomers and conducting bilayer-spanning dimers. To improve our understanding of how subtle changes in bilayer thickness alter the gramicidin monomer and dimer distributions, we performed extensive atomistic molecular dynamics simulations and fluorescence-quenching experiments on gramicidin A (gA). The free-energy calculations predicted a nonlinear coupling between the bilayer thickness and channel formation. The energetic barrier inhibiting gA channel formation was sharply increased in the thickest bilayer (1,2-dierucoyl-sn-glycero-3-phosphocholine). This prediction was corroborated by experimental results on gramicidin channel activity in bilayers of different thickness. To further explore the mechanism of channel formation, we performed extensive unbiased molecular dynamics simulations, which allowed us to observe spontaneous gA dimer formation in lipid bilayers. The simulations revealed structural rearrangements in the gA subunits and changes in lipid packing, as well as water reorganization, that occur during the dimerization process. Together, the simulations and experiments provide new, to our knowledge, insights into the process and mechanism of gramicidin channel formation, as a prototypical example of the bilayer regulation of membrane protein function. The Biophysical Society 2019-11-19 2019-10-10 /pmc/articles/PMC7018991/ /pubmed/31676135 http://dx.doi.org/10.1016/j.bpj.2019.09.044 Text en © 2019 Biophysical Society. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Articles
Sun, Delin
Peyear, Thasin A.
Bennett, W. F. Drew
Andersen, Olaf S.
Lightstone, Felice C.
Ingólfsson, Helgi I.
Molecular Mechanism for Gramicidin Dimerization and Dissociation in Bilayers of Different Thickness
title Molecular Mechanism for Gramicidin Dimerization and Dissociation in Bilayers of Different Thickness
title_full Molecular Mechanism for Gramicidin Dimerization and Dissociation in Bilayers of Different Thickness
title_fullStr Molecular Mechanism for Gramicidin Dimerization and Dissociation in Bilayers of Different Thickness
title_full_unstemmed Molecular Mechanism for Gramicidin Dimerization and Dissociation in Bilayers of Different Thickness
title_short Molecular Mechanism for Gramicidin Dimerization and Dissociation in Bilayers of Different Thickness
title_sort molecular mechanism for gramicidin dimerization and dissociation in bilayers of different thickness
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7018991/
https://www.ncbi.nlm.nih.gov/pubmed/31676135
http://dx.doi.org/10.1016/j.bpj.2019.09.044
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