Effect of surface functionalization and loading on the mechanical properties of soft polymeric nanoparticles prepared by nano-emulsion templating
Autor/a
Otros/as autores/as
Fecha de publicación
2023-02ISSN
1873-4367
Resumen
Drug and gene delivery systems based on polymeric nanoparticles offer a greater efficacy and a reduced toxicity compared to traditional formulations. Recent studies have evidenced that their internalization, biodistribution and efficacy can be affected, among other factors, by their mechanical properties. Here, we analyze by means of Atomic Force Microscopy force spectroscopy how composition, surface functionalization and loading affect the mechanics of nanoparticles. For this purpose, nanoparticles made of Poly(lactic-co-glycolic) (PLGA) and Ethyl cellulose (EC) with different functionalizations and loading were prepared by nano-emulsion templating using the Phase Inversion Composition method (PIC) to form the nano-emulsions. A multiparametric nanomechanical study involving the determination of the Young's modulus, maximum deformation and breakthrough force was carried out. The obtained results showed that composition, surface functionalization and loading affect the nanomechanical properties in a different way, thus requiring, in general, to consider the overall mechanical properties after the addition of a functionalization or loading. A graphical representation method has been proposed enabling to easily identify mechanically equivalent formulations, which is expected to be useful in the development of soft polymeric nanoparticles for pre-clinical and clinical use.
Tipo de documento
Artículo
Versión del documento
Versión publicada
Lengua
Inglés
Materias (CDU)
61 - Medicina
620 - Ensayo de materiales. Materiales comerciales. Economía de la energía
Palabras clave
Polymeric nanoparticles
Mechanics of nanoparticles
AFM
Nanoparticle functionalization
Nanomedicine
Young’s modulus
Polímers--Propietats mecàniques
Nanomedicina
Páginas
p.11
Publicado por
Elsevier
Publicado en
Colloids and Surfaces B: Biointerfaces 2023, 222, 113019
Número del acuerdo de la subvención
info:eu-repo/grantAgreement/EC/H2020/Marie Skłodowska-Curie/801370
info:eu-repo/grantAgreement/MCI/PN I+D/PID2019–110210GB-I00
info:eu-repo/grantAgreement/MCIU/PN I+D/RTI2018–094734-B-C22
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