Literature DB >> 30500043

Insights into the structure and nanomechanics of a quatsome membrane by force spectroscopy measurements and molecular simulations.

Berta Gumí-Audenis1, Sílvia Illa-Tuset, Natascia Grimaldi, Laia Pasquina-Lemonche, Lidia Ferrer-Tasies, Fausto Sanz, Jaume Veciana, Imma Ratera, Jordi Faraudo, Nora Ventosa, Marina I Giannotti.   

Abstract

Quatsomes (QS) are unilamellar nanovesicles constituted by quaternary ammonium surfactants and sterols in defined molar ratios. Unlike conventional liposomes, QS are stable upon long storage such as for several years, they show outstanding vesicle-to-vesicle homogeneity regarding size and lamellarity, and they have the structural and physicochemical requirements to be a potential platform for site-specific delivery of hydrophilic and lipophilic molecules. Knowing in detail the structure and mechanical properties of the QS membrane is of great importance for the design of deformable and flexible nanovesicle alternatives, highly pursued in nanomedicine applications such as the transdermal administration route. In this work, we report the first study on the detailed structure of the cholesterol : CTAB QS membrane at the nanoscale, using atomic force microscopy (AFM) and spectroscopy (AFM-FS) in a controlled liquid environment (ionic medium and temperature) to assess the topography of supported QS membranes (SQMs) and to evaluate the local membrane mechanics. We further perform molecular dynamics (MD) simulations to provide an atomistic interpretation of the obtained results. Our results are direct evidence of the bilayer nature of the QS membrane, with characteristics of a fluid-like membrane, compact and homogeneous in composition, and with structural and mechanical properties that depend on the surrounding environment. We show how ions alter the lateral packing, modifying the membrane mechanics. We observe that according to the ionic environment and temperature, different domains may coexist in the QS membranes, ascribed to variations in molecular tilt angles. Our results indicate that QS membrane properties may be easily tuned by altering the lateral interactions with either different environmental ions or counterions.

Entities:  

Year:  2018        PMID: 30500043     DOI: 10.1039/c8nr07110a

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  2 in total

1.  Visualization and characterization of metallo-aggregates using multi-photon microscopy.

Authors:  Ana Zamora; Michèle Moris; Rui Silva; Olivier Deschaume; Carmen Bartic; Tatjana N Parac-Vogt; Thierry Verbiest
Journal:  RSC Adv       Date:  2020-12-24       Impact factor: 3.361

2.  Ultrabright Föster Resonance Energy Transfer Nanovesicles: The Role of Dye Diffusion.

Authors:  Judit Morla-Folch; Guillem Vargas-Nadal; Edgar Fuentes; Sílvia Illa-Tuset; Mariana Köber; Cristina Sissa; Silvia Pujals; Anna Painelli; Jaume Veciana; Jordi Faraudo; Kevin D Belfield; Lorenzo Albertazzi; Nora Ventosa
Journal:  Chem Mater       Date:  2022-07-19       Impact factor: 10.508

  2 in total

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