The Effect of a Lipid Surface Coating on the Permeation of Upconverting Nanoparticles through a 3D Human Lung Epithelial Model

Author:

Kim Doyoung1,Mandl Gabrielle A.2ORCID,Balkota Marta3,Vernaz Jimmy4,Huang Song4,Constant Samuel4ORCID,Maechler Pierre3ORCID,DeWolf Christine2ORCID,Capobianco John A.2ORCID,Bonacina Luigi1ORCID

Affiliation:

1. Department of Applied Physics Université de Genève Rue de l'Ecole‐de‐Médecine 20 Genève 1205 Switzerland

2. Department of Chemistry and Biochemistry & Center for NanoScience Research Concordia University 7141 Sherbrooke St. W. Montreal QC H4B 1R6 Canada

3. Department of Cell Physiology and Metabolism Université de Genève Rue Michel‐Servet 1 Genève 1206 Switzerland

4. Epithelix Sàrl Chemin des Aulx 18, Plan‐les‐Ouates Genève 1228 Switzerland

Abstract

AbstractPreclinical studies of nanoparticles for pulmonary therapeutics are often performed on 2D cell cultures or in vitro models that do not include a mucus barrier. However, the mucus layer lining the lungs is an essential barrier for drugs to permeate in order to exert a therapeutic effect. Herein, the role of surface coating of lanthanide‐doped upconverting nanoparticles (UCNPs) and their interaction with the mucus barrier are explored using a patient‐derived 3D cell culture model. The upconverted emissions from the UCNPs are used to track them throughout the 3D model and study their localization as a function of administration time and mucus thickness. Positively charged, ligand‐free, and negatively charged, supported lipid bilayer‐coated UCNPs are evaluated. A substantial difference in the residence time in mucus and mucociliary clearance of each type of UCNP is observed in a realistic and relevant model. As such, these results underscore the need for preclinical investigations in tissue models, especially with respect to the surface properties of the nanoparticles under study.

Funder

Natural Sciences and Engineering Research Council of Canada

H2020 LEIT Information and Communication Technologies

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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