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research article

Amphiphilic gold nanoparticles perturb phase separation in multidomain lipid membranes

Canepa, Ester
•
Salassi, Sebastian
•
de Marco, Anna Lucia
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October 14, 2020
Nanoscale

Amphiphilic gold nanoparticles with diameters in the 2-4 nm range are promising as theranostic agents thanks to their spontaneous translocation through cell membranes. This study addresses the effects that these nanoparticles may have on a distinct feature of plasma membranes: lipid lateral phase separation. Atomic force microscopy, quartz crystal microbalance, and molecular dynamics are combined to study the interaction between model neuronal membranes, which spontaneously form ordered and disordered lipid domains, and amphiphilic gold nanoparticles having negatively charged surface functionalization. Nanoparticles are found to interact with the bilayer and form bilayer-embedded ordered aggregates. Nanoparticles also suppress lipid phase separation, in a concentration-dependent fashion. A general, yet simple thermodynamic model is developed to show that the change of lipid-lipid enthalpy is the dominant driving force towards the nanoparticle-induced destabilization of phase separation.

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Type
research article
DOI
10.1039/d0nr05366j
Web of Science ID

WOS:000578100000019

Author(s)
Canepa, Ester
Salassi, Sebastian
de Marco, Anna Lucia
Lambruschini, Chiara
Odino, Davide
Bochicchio, Davide
Canepa, Fabio
Canale, Claudio
Dante, Silvia
Brescia, Rosaria
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Date Issued

2020-10-14

Published in
Nanoscale
Volume

12

Issue

38

Start page

19746

End page

19759

Subjects

Chemistry, Multidisciplinary

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Nanoscience & Nanotechnology

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Materials Science, Multidisciplinary

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Physics, Applied

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Chemistry

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Science & Technology - Other Topics

•

Materials Science

•

Physics

•

ligand-coated nanoparticles

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martini force-field

•

molecular-dynamics

•

au nanoparticles

•

bilayers

•

rafts

•

penetration

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nanodomains

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cholesterol

•

interplay

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LIONS  
Available on Infoscience
October 29, 2020
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/172862
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