Substrate Stiffness and Particle Properties Influence Cellular Uptake of Nanoparticles and Viruses from the Ventral Side

Author:

Voigt Jonah L.12,Timmer Jens123,Pennarola Federica12,Christian Joel1,Meng Ning45,Blumberg Johannes W.56,Schwarz Ulrich S.56,Grimm Dirk45,Cavalcanti‐Adam Elisabetta Ada17ORCID

Affiliation:

1. Max Planck Institute for Medical Research Jahnstraße 29 69120 Heidelberg Germany

2. Department of Physics and Astronomy Heidelberg University 69120 Heidelberg Germany

3. Department of Infectious Diseases Medical Faculty Heidelberg University 69120 Heidelberg Germany

4. Department of Infectious Diseases/Virology Section Viral Vector Technologies, Medical Faculty Heidelberg University 69120 Heidelberg Germany

5. BioQuant Center Heidelberg University INF 267 69120 Heidelberg Germany

6. Institute for Theoretical Physics Heidelberg University Philosophenweg 19 69120 Heidelberg Germany

7. Cellular Biomechanics Faculty of Engineering Bayreuth University Universitätsstr. 30 95447 Bayreuth Germany

Abstract

AbstractIt is a long‐standing challenge to exploit cellular uptake mechanisms to deliver desired cargo into cells, for example, specific drugs or gene editing techniques. This study introduces a bioinspired material approach where nanoparticles are presented at the ventral side of cells adhering to engineered extracellular matrices. The effect of matrix stiffness on cell adhesion and mechanics, as well as on particle internalization by clathrin‐mediated endocytosis (CME), is investigated for varying particle size and surface functionalization. The results presented here show that substrate stiffness affects both cell adhesion and particle internalization, with softer substrates promoting higher levels of particle uptake. However, the activation of the CME pathway, either mechanically by particle size or functionally by receptor binding, regulates the sensitivity of cellular particle uptake to matrix stiffness. Finally, adeno‐associated viruses as the leading platform for therapeutic gene delivery are used as model cargo to showcase the importance of considering multiple components when designing delivery systems. These findings indicate that particle uptake is a multifaceted process that can be improved by the appropriate combination of extracellular environment mechanics and cargo properties.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

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

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