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Morphologies and Structure of Brain Lipid Membrane Dispersions

Alfredsson, Viveka LU ; Lo Nostro, Pierandrea ; Ninham, Barry and Nylander, Tommy LU (2021) In Frontiers in Cell and Developmental Biology 9.
Abstract

This study aims to explore the variety of previously unknown morphologies that brain lipids form in aqueous solutions. We study how these structures are dependent on cholesterol content, salt solution composition, and temperature. For this purpose, dispersions of porcine sphingomyelin with varying amounts of cholesterol as well as dispersions of porcine brain lipid extracts were investigated. We used cryo-TEM to investigate the dispersions at high-salt solution content together with small-angle (SAXD) and wide-angle X-ray diffraction (WAXD) and differential scanning calorimetry (DSC) for dispersions in the corresponding salt solution at high lipid content. Sphingomyelin forms multilamellar vesicles in large excess of aqueous salt... (More)

This study aims to explore the variety of previously unknown morphologies that brain lipids form in aqueous solutions. We study how these structures are dependent on cholesterol content, salt solution composition, and temperature. For this purpose, dispersions of porcine sphingomyelin with varying amounts of cholesterol as well as dispersions of porcine brain lipid extracts were investigated. We used cryo-TEM to investigate the dispersions at high-salt solution content together with small-angle (SAXD) and wide-angle X-ray diffraction (WAXD) and differential scanning calorimetry (DSC) for dispersions in the corresponding salt solution at high lipid content. Sphingomyelin forms multilamellar vesicles in large excess of aqueous salt solution. These vesicles appear as double rippled bilayers in the images and as split Bragg peaks in SAXD together with a very distinct lamellar phase pattern. These features disappear with increasing temperature, and addition of cholesterol as the WAXD data shows that the peak corresponding to the chain crystallinity disappears. The dispersions of sphingomyelin at high cholesterol content form large vesicular type of structures with smooth bilayers. The repeat distance of the lamellar phase depends on temperature, salt solution composition, and slightly with cholesterol content. The brain lipid extracts form large multilamellar vesicles often attached to assemblies of higher electron density. We think that this is probably an example of supra self-assembly with a multiple-layered vesicle surrounding an interior cubic microphase. This is challenging to resolve. DSC shows the presence of different kinds of water bound to the lipid aggregates as a function of the lipid content. Comparison with the effect of lithium, sodium, and calcium salts on the structural parameters of the sphingomyelin and the morphologies of brain lipid extract morphologies demonstrate that lithium has remarkable effects also at low content.

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author
; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
brain lipid, cholesterol, cryo-TEM, specific ion effects, sphingomyelin, structure and morphology, X-ray diffraction
in
Frontiers in Cell and Developmental Biology
volume
9
article number
675140
publisher
Frontiers Media S. A.
external identifiers
  • scopus:85115450477
  • pmid:34195192
ISSN
2296-634X
DOI
10.3389/fcell.2021.675140
language
English
LU publication?
yes
additional info
Publisher Copyright: © Copyright © 2021 Alfredsson, Lo Nostro, Ninham and Nylander.
id
0148fb78-10b6-47dc-8ce3-177d458258b6
date added to LUP
2021-11-01 13:17:25
date last changed
2024-05-04 15:37:32
@article{0148fb78-10b6-47dc-8ce3-177d458258b6,
  abstract     = {{<p>This study aims to explore the variety of previously unknown morphologies that brain lipids form in aqueous solutions. We study how these structures are dependent on cholesterol content, salt solution composition, and temperature. For this purpose, dispersions of porcine sphingomyelin with varying amounts of cholesterol as well as dispersions of porcine brain lipid extracts were investigated. We used cryo-TEM to investigate the dispersions at high-salt solution content together with small-angle (SAXD) and wide-angle X-ray diffraction (WAXD) and differential scanning calorimetry (DSC) for dispersions in the corresponding salt solution at high lipid content. Sphingomyelin forms multilamellar vesicles in large excess of aqueous salt solution. These vesicles appear as double rippled bilayers in the images and as split Bragg peaks in SAXD together with a very distinct lamellar phase pattern. These features disappear with increasing temperature, and addition of cholesterol as the WAXD data shows that the peak corresponding to the chain crystallinity disappears. The dispersions of sphingomyelin at high cholesterol content form large vesicular type of structures with smooth bilayers. The repeat distance of the lamellar phase depends on temperature, salt solution composition, and slightly with cholesterol content. The brain lipid extracts form large multilamellar vesicles often attached to assemblies of higher electron density. We think that this is probably an example of supra self-assembly with a multiple-layered vesicle surrounding an interior cubic microphase. This is challenging to resolve. DSC shows the presence of different kinds of water bound to the lipid aggregates as a function of the lipid content. Comparison with the effect of lithium, sodium, and calcium salts on the structural parameters of the sphingomyelin and the morphologies of brain lipid extract morphologies demonstrate that lithium has remarkable effects also at low content.</p>}},
  author       = {{Alfredsson, Viveka and Lo Nostro, Pierandrea and Ninham, Barry and Nylander, Tommy}},
  issn         = {{2296-634X}},
  keywords     = {{brain lipid; cholesterol; cryo-TEM; specific ion effects; sphingomyelin; structure and morphology; X-ray diffraction}},
  language     = {{eng}},
  month        = {{06}},
  publisher    = {{Frontiers Media S. A.}},
  series       = {{Frontiers in Cell and Developmental Biology}},
  title        = {{Morphologies and Structure of Brain Lipid Membrane Dispersions}},
  url          = {{http://dx.doi.org/10.3389/fcell.2021.675140}},
  doi          = {{10.3389/fcell.2021.675140}},
  volume       = {{9}},
  year         = {{2021}},
}