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Structural Characterization of Nanoparticle-Supported Lipid Bilayer Arrays by Grazing Incidence X-ray and Neutron Scattering

Authors :
Paracini, Nicolo
Gutfreund, Philipp
Welbourn, Rebecca
Gonzalez-Martinez, Juan Francisco
Zhu, Kexin
Miao, Yansong
Yepuri, Nageshwar
Darwish, Tamim A. .
Garvey, Christopher
Waldie, Sarah
Larsson, Johan
Wolff, Max
Cardenas, Marite
Paracini, Nicolo
Gutfreund, Philipp
Welbourn, Rebecca
Gonzalez-Martinez, Juan Francisco
Zhu, Kexin
Miao, Yansong
Yepuri, Nageshwar
Darwish, Tamim A. .
Garvey, Christopher
Waldie, Sarah
Larsson, Johan
Wolff, Max
Cardenas, Marite
Publication Year :
2023

Abstract

Arrays of nanoparticle-supported lipid bilayers (nanoSLB) are lipid-coated nanopatterned interfaces that provide a platform to study curved model biological membranes using surface-sensitive techniques. We combined scattering techniques with direct imaging, to gain access to sub-nanometer scale structural information on stable nanoparticle monolayers assembled on silicon crystals in a noncovalent manner using a Langmuir-Schaefer deposition. The structure of supported lipid bilayers formed on the nanoparticle arrays via vesicle fusion was investigated using a combination of grazing incidence X-ray and neutron scattering techniques complemented by fluorescence microscopy imaging. Ordered nanoparticle assemblies were shown to be suitable and stable substrates for the formation of curved and fluid lipid bilayers that retained lateral mobility, as shown by fluorescence recovery after photobleaching and quartz crystal microbalance measurements. Neutron reflectometry revealed the formation of high-coverage lipid bilayers around the spherical particles together with a flat lipid bilayer on the substrate below the nanoparticles. The presence of coexisting flat and curved supported lipid bilayers on the same substrate, combined with the sub-nanometer accuracy and isotopic sensitivity of grazing incidence neutron scattering, provides a promising novel approach to investigate curvature-dependent membrane phenomena on supported lipid bilayers.

Details

Database :
OAIster
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1428019674
Document Type :
Electronic Resource
Full Text :
https://doi.org/10.1021.acsami.2c18956