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Hierarchical Quatsome-RGD Nanoarchitectonic Surfaces for Enhanced Integrin-Mediated Cell Adhesion

Authors :
Ministerio de Ciencia, Innovación y Universidades (España)
Instituto de Salud Carlos III
Centro de Investigación Biomédica en Red Bioingeniería, Biomateriales y Nanomedicina (España)
Generalitat de Catalunya
Fundació La Marató de TV3
European Cooperation in Science and Technology
Max Planck Society
European Commission
Köber, Mariana [0000-0001-9962-7900]
Kyvik Ruiz, Adriana [0000-0002-6385-7162]
Tomsen Melero, Judit [0000-0002-2837-8107]
Pulido, Daniel [0000-0002-2841-194X]
Royo, Miriam [0000-0001-5292-0819]
Mas Torrent, Marta [0000-0002-1586-005X]
Veciana, Jaume [0000-0003-1023-9923]
Giannotti, Marina I. [0000-0002-0815-742X]
Guasch, Judith [0000-0002-3571-4711]
Ventosa, Nora [0000-0002-8008-4974]
Ratera, Imma [0000-0002-1464-9789]
Martínez Miguel, Marc
Castellote Borrell, Miquel
Köber, Mariana
Kyvik Ruiz, Adriana
Tomsen Melero, Judit
Vargas Nadal, Guillem
Muñoz Martín, José M.
Pulido, Daniel
Cristóbal Lecina, Edgar
Passemard, Solène
Royo, Miriam
Mas Torrent, Marta
Veciana, Jaume
Giannotti, Marina I.
Guasch, Judith
Ventosa, Nora
Ratera, Imma
Ministerio de Ciencia, Innovación y Universidades (España)
Instituto de Salud Carlos III
Centro de Investigación Biomédica en Red Bioingeniería, Biomateriales y Nanomedicina (España)
Generalitat de Catalunya
Fundació La Marató de TV3
European Cooperation in Science and Technology
Max Planck Society
European Commission
Köber, Mariana [0000-0001-9962-7900]
Kyvik Ruiz, Adriana [0000-0002-6385-7162]
Tomsen Melero, Judit [0000-0002-2837-8107]
Pulido, Daniel [0000-0002-2841-194X]
Royo, Miriam [0000-0001-5292-0819]
Mas Torrent, Marta [0000-0002-1586-005X]
Veciana, Jaume [0000-0003-1023-9923]
Giannotti, Marina I. [0000-0002-0815-742X]
Guasch, Judith [0000-0002-3571-4711]
Ventosa, Nora [0000-0002-8008-4974]
Ratera, Imma [0000-0002-1464-9789]
Martínez Miguel, Marc
Castellote Borrell, Miquel
Köber, Mariana
Kyvik Ruiz, Adriana
Tomsen Melero, Judit
Vargas Nadal, Guillem
Muñoz Martín, José M.
Pulido, Daniel
Cristóbal Lecina, Edgar
Passemard, Solène
Royo, Miriam
Mas Torrent, Marta
Veciana, Jaume
Giannotti, Marina I.
Guasch, Judith
Ventosa, Nora
Ratera, Imma
Publication Year :
2022

Abstract

The synthesis and study of the tripeptide Arg-Gly-Asp (RGD), the binding site of different extracellular matrix proteins, e.g., fibronectin and vitronectin, has allowed the production of a wide range of cell adhesive surfaces. Although the surface density and spacing of the RGD peptide at the nanoscale have already shown a significant influence on cell adhesion, the impact of its hierarchical nanostructure is still rather unexplored. Accordingly, a versatile colloidal system named quatsomes, based on fluid nanovesicles formed by the self-assembling of cholesterol and surfactant molecules, has been devised as a novel template to achieve hierarchical nanostructures of the RGD peptide. To this end, RGD was anchored on the vesicle's fluid membrane of quatsomes, and the RGD-functionalized nanovesicles were covalently anchored to planar gold surfaces, forming a state of quasi-suspension, through a long poly(ethylene glycol) (PEG) chain with a thiol termination. An underlying self-assembled monolayer (SAM) of a shorter PEG was introduced for vesicle stabilization and to avoid unspecific cell adhesion. In comparison with substrates featuring a homogeneous distribution of RGD peptides, the resulting hierarchical nanoarchitectonic dramatically enhanced cell adhesion, despite lower overall RGD molecules on the surface. The new versatile platform was thoroughly characterized using a multitechnique approach, proving its enhanced performance. These findings open new methods for the hierarchical immobilization of biomolecules on surfaces using quatsomes as a robust and novel tissue engineering strategy.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1356198970
Document Type :
Electronic Resource