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The Molecular Structure of Human Red Blood Cell Membranes from Highly Oriented, Solid Supported Multi-Lamellar Membranes.

Authors :
Himbert S
Alsop RJ
Rose M
Hertz L
Dhaliwal A
Moran-Mirabal JM
Verschoor CP
Bowdish DM
Kaestner L
Wagner C
Rheinstädter MC
Source :
Scientific reports [Sci Rep] 2017 Jan 03; Vol. 7, pp. 39661. Date of Electronic Publication: 2017 Jan 03.
Publication Year :
2017

Abstract

We prepared highly oriented, multi-lamellar stacks of human red blood cell (RBC) membranes applied on silicon wafers. RBC ghosts were prepared by hemolysis and applied onto functionalized silicon chips and annealed into multi-lamellar RBC membranes. High resolution X-ray diffraction was used to determine the molecular structure of the stacked membranes. We present direct experimental evidence that these RBC membranes consist of nanometer sized domains of integral coiled-coil peptides, as well as liquid ordered (l <subscript>o</subscript> ) and liquid disordered (l <subscript>d</subscript> ) lipids. Lamellar spacings, membrane and hydration water layer thicknesses, areas per lipid tail and domain sizes were determined. The common drug aspirin was added to the RBC membranes and found to interact with RBC membranes and preferably partition in the head group region of the l <subscript>o</subscript> domain leading to a fluidification of the membranes, i.e., a thinning of the bilayers and an increase in lipid tail spacing. Our results further support current models of RBC membranes as patchy structures and provide unprecedented structural details of the molecular organization in the different domains.

Details

Language :
English
ISSN :
2045-2322
Volume :
7
Database :
MEDLINE
Journal :
Scientific reports
Publication Type :
Academic Journal
Accession number :
28045119
Full Text :
https://doi.org/10.1038/srep39661