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2D dynamical arrest transition in a mixed nanoparticle-phospholipid layer studied in real and momentum spaces

We investigate the interfacial dynamics of a 2D self-organized mixed layer made of silica nanoparticles interacting with phospholipid (DPPC) monolayers at the air/water interface. This system has biological relevance, allowing investigation of toxicological effects of nanoparticles on model membrane...

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Autores principales: Orsi, Davide, Guzmán, Eduardo, Liggieri, Libero, Ravera, Francesca, Ruta, Beatrice, Chushkin, Yuriy, Rimoldi, Tiziano, Cristofolini, Luigi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4674700/
https://www.ncbi.nlm.nih.gov/pubmed/26658474
http://dx.doi.org/10.1038/srep17930
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author Orsi, Davide
Guzmán, Eduardo
Liggieri, Libero
Ravera, Francesca
Ruta, Beatrice
Chushkin, Yuriy
Rimoldi, Tiziano
Cristofolini, Luigi
author_facet Orsi, Davide
Guzmán, Eduardo
Liggieri, Libero
Ravera, Francesca
Ruta, Beatrice
Chushkin, Yuriy
Rimoldi, Tiziano
Cristofolini, Luigi
author_sort Orsi, Davide
collection PubMed
description We investigate the interfacial dynamics of a 2D self-organized mixed layer made of silica nanoparticles interacting with phospholipid (DPPC) monolayers at the air/water interface. This system has biological relevance, allowing investigation of toxicological effects of nanoparticles on model membranes and lung surfactants. It might also provide bio-inspired technological solutions, exploiting the self-organization of DPPC to produce a non-trivial 2D structuration of nanoparticles. The characterization of interfacial dynamics yields information on the effects of NPs on the mechanical properties, important to improve performances of systems such as colloidosomes, foams, creams. For this, we combine micro-tracking in real-space with measurement in momentum-space via x-ray photon-correlation spectroscopy and Digital Fourier Microscopy. Using these complementary techniques, we extend the spatial range of investigation beyond the limits of each one. We find a dynamical transition from Brownian diffusion to an arrested state driven by compression, characterized by intermittent rearrangements, compatible with a repulsive glass phase. The rearrangement and relaxation of the monolayer structure results dramatically hindered by the presence of NPs, which is relevant to explain some the mechanical features observed for the dynamic surface pressure response of these systems and which can be relevant for the respiratory physiology and for future drug-delivery composite systems.
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spelling pubmed-46747002015-12-14 2D dynamical arrest transition in a mixed nanoparticle-phospholipid layer studied in real and momentum spaces Orsi, Davide Guzmán, Eduardo Liggieri, Libero Ravera, Francesca Ruta, Beatrice Chushkin, Yuriy Rimoldi, Tiziano Cristofolini, Luigi Sci Rep Article We investigate the interfacial dynamics of a 2D self-organized mixed layer made of silica nanoparticles interacting with phospholipid (DPPC) monolayers at the air/water interface. This system has biological relevance, allowing investigation of toxicological effects of nanoparticles on model membranes and lung surfactants. It might also provide bio-inspired technological solutions, exploiting the self-organization of DPPC to produce a non-trivial 2D structuration of nanoparticles. The characterization of interfacial dynamics yields information on the effects of NPs on the mechanical properties, important to improve performances of systems such as colloidosomes, foams, creams. For this, we combine micro-tracking in real-space with measurement in momentum-space via x-ray photon-correlation spectroscopy and Digital Fourier Microscopy. Using these complementary techniques, we extend the spatial range of investigation beyond the limits of each one. We find a dynamical transition from Brownian diffusion to an arrested state driven by compression, characterized by intermittent rearrangements, compatible with a repulsive glass phase. The rearrangement and relaxation of the monolayer structure results dramatically hindered by the presence of NPs, which is relevant to explain some the mechanical features observed for the dynamic surface pressure response of these systems and which can be relevant for the respiratory physiology and for future drug-delivery composite systems. Nature Publishing Group 2015-12-10 /pmc/articles/PMC4674700/ /pubmed/26658474 http://dx.doi.org/10.1038/srep17930 Text en Copyright © 2015, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Orsi, Davide
Guzmán, Eduardo
Liggieri, Libero
Ravera, Francesca
Ruta, Beatrice
Chushkin, Yuriy
Rimoldi, Tiziano
Cristofolini, Luigi
2D dynamical arrest transition in a mixed nanoparticle-phospholipid layer studied in real and momentum spaces
title 2D dynamical arrest transition in a mixed nanoparticle-phospholipid layer studied in real and momentum spaces
title_full 2D dynamical arrest transition in a mixed nanoparticle-phospholipid layer studied in real and momentum spaces
title_fullStr 2D dynamical arrest transition in a mixed nanoparticle-phospholipid layer studied in real and momentum spaces
title_full_unstemmed 2D dynamical arrest transition in a mixed nanoparticle-phospholipid layer studied in real and momentum spaces
title_short 2D dynamical arrest transition in a mixed nanoparticle-phospholipid layer studied in real and momentum spaces
title_sort 2d dynamical arrest transition in a mixed nanoparticle-phospholipid layer studied in real and momentum spaces
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4674700/
https://www.ncbi.nlm.nih.gov/pubmed/26658474
http://dx.doi.org/10.1038/srep17930
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