The advancement of nanotechnology toward more sophisticated bioinspired approaches has highlighted the gap between the advantages of biomimetic and biohybrid platforms and the availability of manufacturing processes to scale up their production. Though the advantages of transferring biological features from cells to synthetic nanoparticles for drug delivery purposes have recently been reported, a standardizable, batch-to-batch consistent, scalable, and high-throughput assembly method is required to further develop these platforms. Microfluidics has offered a robust tool for the controlled synthesis of nanoparticles in a versatile and reproducible approach. In this study, the incorporation of membrane proteins within the bilayer of biomimetic nanovesicles (leukosomes) using a microfluidic-based platform is demonstrated. The physical, pharmaceutical, and biological properties of microfluidic-formulated leukosomes (called NA-Leuko) are characterized. NA-Leuko show extended shelf life and retention of the biological functions of donor cells (i.e., macrophage avoidance and targeting of inflamed vasculature). The NA approach represents a universal, versatile, robust, and scalable tool, which is extensively used for the assembly of lipid nanoparticles and adapted here for the manufacturing of biomimetic nanovesicles.

Molinaro, R., Evangelopoulos, M., Hoffman, J., Corbo, C., Taraballi, F., Martinez, J., et al. (2018). Design and Development of Biomimetic Nanovesicles Using a Microfluidic Approach. ADVANCED MATERIALS, 30(15) [10.1002/adma.201702749].

Design and Development of Biomimetic Nanovesicles Using a Microfluidic Approach

Corbo, C;
2018

Abstract

The advancement of nanotechnology toward more sophisticated bioinspired approaches has highlighted the gap between the advantages of biomimetic and biohybrid platforms and the availability of manufacturing processes to scale up their production. Though the advantages of transferring biological features from cells to synthetic nanoparticles for drug delivery purposes have recently been reported, a standardizable, batch-to-batch consistent, scalable, and high-throughput assembly method is required to further develop these platforms. Microfluidics has offered a robust tool for the controlled synthesis of nanoparticles in a versatile and reproducible approach. In this study, the incorporation of membrane proteins within the bilayer of biomimetic nanovesicles (leukosomes) using a microfluidic-based platform is demonstrated. The physical, pharmaceutical, and biological properties of microfluidic-formulated leukosomes (called NA-Leuko) are characterized. NA-Leuko show extended shelf life and retention of the biological functions of donor cells (i.e., macrophage avoidance and targeting of inflamed vasculature). The NA approach represents a universal, versatile, robust, and scalable tool, which is extensively used for the assembly of lipid nanoparticles and adapted here for the manufacturing of biomimetic nanovesicles.
Articolo in rivista - Articolo scientifico
bioinspired approach; inflammation; membrane protein incorporation; microfluidics; molecular dynamics;
microfluidics, bio-inspired nanoparticles
English
2018
30
15
1702749
reserved
Molinaro, R., Evangelopoulos, M., Hoffman, J., Corbo, C., Taraballi, F., Martinez, J., et al. (2018). Design and Development of Biomimetic Nanovesicles Using a Microfluidic Approach. ADVANCED MATERIALS, 30(15) [10.1002/adma.201702749].
File in questo prodotto:
File Dimensione Formato  
Molinaro_et_al-2018-Advanced_Materials.pdf

Solo gestori archivio

Dimensione 2.76 MB
Formato Adobe PDF
2.76 MB Adobe PDF   Visualizza/Apri   Richiedi una copia

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/217924
Citazioni
  • Scopus 96
  • ???jsp.display-item.citation.isi??? 88
Social impact