Literature DB >> 30742804

Interaction of salt with ether- and ester-linked phospholipid bilayers.

Matthew Saunders1, Mark Steele2, Wyatt Lavigne2, Sameer Varma3, Sagar A Pandit4.   

Abstract

A distinguishing feature of Archaeal plasma membranes is that their phospholipids contain ether-links, as opposed to bacterial and eukaryotic plasma membranes where phospholipids primarily contain ester-links. Experiments show that this chemical difference in headgroup-tail linkage does produce distinct differences in model bilayer properties. Here we examine the effects of salt on bilayer structure in the case of an ether-linked lipid bilayer. We use molecular dynamics simulations and compare equilibrium properties of two model lipid bilayers in NaCl salt solution - POPC and its ether-linked analog that we refer to as HOPC. We make the following key observations. The headgroup region of HOPC "adsorbs" fewer ions compared to the headgroup region of POPC. Consistent with this, we note that the Debye screening length in the HOPC system is ∼ 10% shorter than that in the POPC system. Herein, we introduce a protocol to identify the lipid-water interfacial boundary that reproduces the bulk salt distribution consistent with Gouy-Chapman theory. We also note that the HOPC bilayer has excess solvent in the headgroup region when compared to POPC, coinciding with a trough in the electrostatic potential. Waters in this region have longer autocorrelation times and smaller lateral diffusion rates compared to the corresponding region in the POPC bilayer, suggesting that the waters in HOPC are more strongly coordinated to the lipid headgroups. Furthermore, we note that it is this region of tightly coordinated waters in the HOPC system that has a lower density of Na+ ions. Based on these observations we conclude that an ether-linked lipid bilayer has a lower binding affinity for Na+ compared to an ester-linked lipid bilayer.
Copyright © 2019 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Ether lipids; Gouy-Chapman theory; Ions; Lipid bilayers; Zwitterionic

Mesh:

Substances:

Year:  2019        PMID: 30742804      PMCID: PMC6598717          DOI: 10.1016/j.bbamem.2019.01.016

Source DB:  PubMed          Journal:  Biochim Biophys Acta Biomembr        ISSN: 0005-2736            Impact factor:   3.747


  24 in total

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10.  Molecular dynamics simulations of ether- and ester-linked phospholipids.

Authors:  James Kruczek; Matthew Saunders; Meghna Khosla; Yicheng Tu; Sagar A Pandit
Journal:  Biochim Biophys Acta Biomembr       Date:  2017-09-04       Impact factor: 3.747

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