Influence of effective polarization on ion and water interactions within a biomimetic nanopore

Interactions between ions and water at hydrophobic interfaces within ion channels and nanopores are suggested to play a key role in the movement of ions across biological membranes. Previous molecular-dynamics simulations have shown that anion affinity for aqueous/hydrophobic interfaces can be marke...

Full description

Bibliographic Details
Main Authors: Phan, LX, Lynch, CI, Crain, J, Sansom, MSP, Tucker, SJ
Format: Journal article
Language:English
Published: Cell Press 2022
_version_ 1797107931916795904
author Phan, LX
Lynch, CI
Crain, J
Sansom, MSP
Tucker, SJ
author_facet Phan, LX
Lynch, CI
Crain, J
Sansom, MSP
Tucker, SJ
author_sort Phan, LX
collection OXFORD
description Interactions between ions and water at hydrophobic interfaces within ion channels and nanopores are suggested to play a key role in the movement of ions across biological membranes. Previous molecular-dynamics simulations have shown that anion affinity for aqueous/hydrophobic interfaces can be markedly influenced by including polarization effects through an electronic continuum correction. Here, we designed a model biomimetic nanopore to imitate the polar pore openings and hydrophobic gating regions found in pentameric ligand-gated ion channels. Molecular-dynamics simulations were then performed using both a non-polarizable force field and the electronic-continuum-correction method to investigate the behavior of water, Na+, and Cl- ions confined within the hydrophobic region of the nanopore. Number-density distributions revealed preferential Cl- adsorption to the hydrophobic pore walls, with this interfacial layer largely devoid of Na+. Free-energy profiles for Na+ and Cl- permeating the pore also display an energy-barrier reduction associated with the localization of Cl- to this hydrophobic interface, and the hydration-number profiles reflect a corresponding reduction in the first hydration shell of Cl-. Crucially, these ion effects were only observed through inclusion of effective polarization, which therefore suggests that polarizability may be essential for an accurate description for the behavior of ions and water within hydrophobic nanoscale pores, especially those that conduct Cl-.
first_indexed 2024-03-07T07:22:36Z
format Journal article
id oxford-uuid:408e3ea3-6066-4a68-9396-9db169abb341
institution University of Oxford
language English
last_indexed 2024-03-07T07:22:36Z
publishDate 2022
publisher Cell Press
record_format dspace
spelling oxford-uuid:408e3ea3-6066-4a68-9396-9db169abb3412022-10-25T07:23:50ZInfluence of effective polarization on ion and water interactions within a biomimetic nanoporeJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:408e3ea3-6066-4a68-9396-9db169abb341EnglishSymplectic ElementsCell Press2022Phan, LXLynch, CICrain, JSansom, MSPTucker, SJInteractions between ions and water at hydrophobic interfaces within ion channels and nanopores are suggested to play a key role in the movement of ions across biological membranes. Previous molecular-dynamics simulations have shown that anion affinity for aqueous/hydrophobic interfaces can be markedly influenced by including polarization effects through an electronic continuum correction. Here, we designed a model biomimetic nanopore to imitate the polar pore openings and hydrophobic gating regions found in pentameric ligand-gated ion channels. Molecular-dynamics simulations were then performed using both a non-polarizable force field and the electronic-continuum-correction method to investigate the behavior of water, Na+, and Cl- ions confined within the hydrophobic region of the nanopore. Number-density distributions revealed preferential Cl- adsorption to the hydrophobic pore walls, with this interfacial layer largely devoid of Na+. Free-energy profiles for Na+ and Cl- permeating the pore also display an energy-barrier reduction associated with the localization of Cl- to this hydrophobic interface, and the hydration-number profiles reflect a corresponding reduction in the first hydration shell of Cl-. Crucially, these ion effects were only observed through inclusion of effective polarization, which therefore suggests that polarizability may be essential for an accurate description for the behavior of ions and water within hydrophobic nanoscale pores, especially those that conduct Cl-.
spellingShingle Phan, LX
Lynch, CI
Crain, J
Sansom, MSP
Tucker, SJ
Influence of effective polarization on ion and water interactions within a biomimetic nanopore
title Influence of effective polarization on ion and water interactions within a biomimetic nanopore
title_full Influence of effective polarization on ion and water interactions within a biomimetic nanopore
title_fullStr Influence of effective polarization on ion and water interactions within a biomimetic nanopore
title_full_unstemmed Influence of effective polarization on ion and water interactions within a biomimetic nanopore
title_short Influence of effective polarization on ion and water interactions within a biomimetic nanopore
title_sort influence of effective polarization on ion and water interactions within a biomimetic nanopore
work_keys_str_mv AT phanlx influenceofeffectivepolarizationonionandwaterinteractionswithinabiomimeticnanopore
AT lynchci influenceofeffectivepolarizationonionandwaterinteractionswithinabiomimeticnanopore
AT crainj influenceofeffectivepolarizationonionandwaterinteractionswithinabiomimeticnanopore
AT sansommsp influenceofeffectivepolarizationonionandwaterinteractionswithinabiomimeticnanopore
AT tuckersj influenceofeffectivepolarizationonionandwaterinteractionswithinabiomimeticnanopore