The dependence of lipid asymmetry upon phosphatidylcholine acyl chain structure[S]
Lipid asymmetry, the difference in inner and outer leaflet lipid composition, is an important feature of biomembranes. By utilizing our recently developed MβCD-catalyzed exchange method, the effect of lipid acyl chain structure upon the ability to form asymmetric membranes was investigated. Using th...
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doaj-7a2c0d240acf4acd8a9eeb946c0aed212021-04-28T06:05:04ZengElsevierJournal of Lipid Research0022-22752013-01-01541223231The dependence of lipid asymmetry upon phosphatidylcholine acyl chain structure[S]Mijin Son0Erwin London1Department of Biochemistry and Cell Biology, Stony Brook University, Stony Brook, NYTo whom correspondence should be addressed. e-mail: Erwin.London@stonybrook.edu.; To whom correspondence should be addressed. e-mail: Erwin.London@stonybrook.edu.; Department of Biochemistry and Cell Biology, Stony Brook University, Stony Brook, NYLipid asymmetry, the difference in inner and outer leaflet lipid composition, is an important feature of biomembranes. By utilizing our recently developed MβCD-catalyzed exchange method, the effect of lipid acyl chain structure upon the ability to form asymmetric membranes was investigated. Using this approach, SM was efficiently introduced into the outer leaflet of vesicles containing various phosphatidylcholines (PC), but whether the resulting vesicles were asymmetric (SM outside/PC inside) depended upon PC acyl chain structure. Vesicles exhibited asymmetry using PC with two monounsaturated chains of >14 carbons; PC with one saturated and one unsaturated chain; and PC with phytanoyl chains. Vesicles were most weakly asymmetric using PC with two 14 carbon monounsaturated chains or with two polyunsaturated chains. To define the origin of this behavior, transverse diffusion (flip-flop) of lipids in vesicles containing various PCs was compared. A correlation between asymmetry and transverse diffusion was observed, with slower transverse diffusion in vesicles containing PCs that supported lipid asymmetry. Thus, asymmetric vesicles can be prepared using a wide range of acyl chain structures, but fast transverse diffusion destroys lipid asymmetry. These properties may constrain acyl chain structure in asymmetric natural membranes to avoid short or overly polyunsaturated acyl chains.http://www.sciencedirect.com/science/article/pii/S0022227520417766cyclodextrinlipid exchangemembrane structurefluorescencetransverse diffusionflip-flop |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mijin Son Erwin London |
spellingShingle |
Mijin Son Erwin London The dependence of lipid asymmetry upon phosphatidylcholine acyl chain structure[S] Journal of Lipid Research cyclodextrin lipid exchange membrane structure fluorescence transverse diffusion flip-flop |
author_facet |
Mijin Son Erwin London |
author_sort |
Mijin Son |
title |
The dependence of lipid asymmetry upon phosphatidylcholine acyl chain structure[S] |
title_short |
The dependence of lipid asymmetry upon phosphatidylcholine acyl chain structure[S] |
title_full |
The dependence of lipid asymmetry upon phosphatidylcholine acyl chain structure[S] |
title_fullStr |
The dependence of lipid asymmetry upon phosphatidylcholine acyl chain structure[S] |
title_full_unstemmed |
The dependence of lipid asymmetry upon phosphatidylcholine acyl chain structure[S] |
title_sort |
dependence of lipid asymmetry upon phosphatidylcholine acyl chain structure[s] |
publisher |
Elsevier |
series |
Journal of Lipid Research |
issn |
0022-2275 |
publishDate |
2013-01-01 |
description |
Lipid asymmetry, the difference in inner and outer leaflet lipid composition, is an important feature of biomembranes. By utilizing our recently developed MβCD-catalyzed exchange method, the effect of lipid acyl chain structure upon the ability to form asymmetric membranes was investigated. Using this approach, SM was efficiently introduced into the outer leaflet of vesicles containing various phosphatidylcholines (PC), but whether the resulting vesicles were asymmetric (SM outside/PC inside) depended upon PC acyl chain structure. Vesicles exhibited asymmetry using PC with two monounsaturated chains of >14 carbons; PC with one saturated and one unsaturated chain; and PC with phytanoyl chains. Vesicles were most weakly asymmetric using PC with two 14 carbon monounsaturated chains or with two polyunsaturated chains. To define the origin of this behavior, transverse diffusion (flip-flop) of lipids in vesicles containing various PCs was compared. A correlation between asymmetry and transverse diffusion was observed, with slower transverse diffusion in vesicles containing PCs that supported lipid asymmetry. Thus, asymmetric vesicles can be prepared using a wide range of acyl chain structures, but fast transverse diffusion destroys lipid asymmetry. These properties may constrain acyl chain structure in asymmetric natural membranes to avoid short or overly polyunsaturated acyl chains. |
topic |
cyclodextrin lipid exchange membrane structure fluorescence transverse diffusion flip-flop |
url |
http://www.sciencedirect.com/science/article/pii/S0022227520417766 |
work_keys_str_mv |
AT mijinson thedependenceoflipidasymmetryuponphosphatidylcholineacylchainstructures AT erwinlondon thedependenceoflipidasymmetryuponphosphatidylcholineacylchainstructures AT mijinson dependenceoflipidasymmetryuponphosphatidylcholineacylchainstructures AT erwinlondon dependenceoflipidasymmetryuponphosphatidylcholineacylchainstructures |
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1721504269556776960 |