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The interaction of styrene maleic acid copolymers with phospholipids in Langmuir monolayers, vesicles and nanodiscs: a structural study

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Published
  • S.C.L. Hall
  • C. Tognoloni
  • R.A. Campbell
  • J. Richens
  • P. O'Shea
  • A.E. Terry
  • G.J. Price
  • T.R. Dafforn
  • K.J. Edler
  • T. Arnold
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<mark>Journal publication date</mark>30/11/2022
<mark>Journal</mark>Journal of Colloid and Interface Science
Volume625
Number of pages17
Pages (from-to)220-236
Publication StatusPublished
Early online date15/06/22
<mark>Original language</mark>English

Abstract

Hypothesis
Self-assembly of amphipathic styrene maleic acid copolymers with phospholipids in aqueous solution results in the formation of ‘nanodiscs’ containing a planar segment of phospholipid bilayer encapsulated by a polymer belt. Recently, studies have reported that lipids rapidly exchange between both nanodiscs in solution and external sources of lipids. Outstanding questions remain regarding details of polymer-lipid interactions, factors influencing lipid exchange and structural effects of such exchange processes. Here, the dynamic behaviour of nanodiscs is investigated, specifically the role of membrane charge and polymer chemistry.

Experiments
Two model systems are investigated: fluorescently labelled phospholipid vesicles, and Langmuir monolayers of phospholipids. Using fluorescence spectroscopy and time-resolved neutron reflectometry, the membrane potential, monolayer structure and composition are monitored with respect to time upon polymer and nanodisc interactions.

Findings
In the presence of external lipids, polymer chains embed throughout lipid membranes, the extent of which is governed by the net membrane charge. Nanodiscs stabilised by three different polymers will all exchange lipids and polymer with monolayers to differing extents, related to the properties of the stabilising polymer belt. These results demonstrate the dynamic nature of nanodiscs which interact with the local environment and are likely to deposit both lipids and polymer at all stages of use.

Bibliographic note

Funding details: Engineering and Physical Sciences Research Council, EPSRC, EP/M506461/1 Funding details: Biotechnology and Biological Sciences Research Council, BBSRC, BB/M018261/1