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Mimicking the Biology of Engineered Protein and mRNA Nanoparticle Delivery Using a Versatile Microfluidic Platform

To investigate the delivery of next-generation macromolecular drugs, such as engineered proteins and mRNA-containing nanoparticles, there is an increasing push towards the use of physiologically relevant disease models that incorporate human cells and do not face ethical dilemmas associated with ani...

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Autores principales: Palacio-Castañeda, Valentina, Oude Egberink, Rik, Sait, Arbaaz, Andrée, Lea, Sala, Benedetta Maria, Hassani Besheli, Negar, Oosterwijk, Egbert, Nilvebrant, Johan, Leeuwenburgh, Sander C. G., Brock, Roland, Verdurmen, Wouter P. R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8624409/
https://www.ncbi.nlm.nih.gov/pubmed/34834361
http://dx.doi.org/10.3390/pharmaceutics13111944
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author Palacio-Castañeda, Valentina
Oude Egberink, Rik
Sait, Arbaaz
Andrée, Lea
Sala, Benedetta Maria
Hassani Besheli, Negar
Oosterwijk, Egbert
Nilvebrant, Johan
Leeuwenburgh, Sander C. G.
Brock, Roland
Verdurmen, Wouter P. R.
author_facet Palacio-Castañeda, Valentina
Oude Egberink, Rik
Sait, Arbaaz
Andrée, Lea
Sala, Benedetta Maria
Hassani Besheli, Negar
Oosterwijk, Egbert
Nilvebrant, Johan
Leeuwenburgh, Sander C. G.
Brock, Roland
Verdurmen, Wouter P. R.
author_sort Palacio-Castañeda, Valentina
collection PubMed
description To investigate the delivery of next-generation macromolecular drugs, such as engineered proteins and mRNA-containing nanoparticles, there is an increasing push towards the use of physiologically relevant disease models that incorporate human cells and do not face ethical dilemmas associated with animal use. Here, we illustrate the versatility and ease of use of a microfluidic platform for studying drug delivery using high-resolution microscopy in 3D. Using this microfluidic platform, we successfully demonstrate the specific targeting of carbonic anhydrase IX (CAIX) on cells overexpressing the protein in a tumor-mimicking chip system using affibodies, with CAIX-negative cells and non-binding affibodies as controls. Furthermore, we demonstrate this system’s feasibility for testing mRNA-containing biomaterials designed to regenerate bone defects. To this end, peptide- and lipid-based mRNA formulations were successfully mixed with colloidal gelatin in microfluidic devices, while translational activity was studied by the expression of a green fluorescent protein. This microfluidic platform enables the testing of mRNA delivery from colloidal biomaterials of relatively high densities, which represents a first important step towards a bone-on-a-chip platform. Collectively, by illustrating the ease of adaptation of our microfluidic platform towards use in distinct applications, we show that our microfluidic chip represents a powerful and flexible way to investigate drug delivery in 3D disease-mimicking culture systems that recapitulate key parameters associated with in vivo drug application.
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spelling pubmed-86244092021-11-27 Mimicking the Biology of Engineered Protein and mRNA Nanoparticle Delivery Using a Versatile Microfluidic Platform Palacio-Castañeda, Valentina Oude Egberink, Rik Sait, Arbaaz Andrée, Lea Sala, Benedetta Maria Hassani Besheli, Negar Oosterwijk, Egbert Nilvebrant, Johan Leeuwenburgh, Sander C. G. Brock, Roland Verdurmen, Wouter P. R. Pharmaceutics Article To investigate the delivery of next-generation macromolecular drugs, such as engineered proteins and mRNA-containing nanoparticles, there is an increasing push towards the use of physiologically relevant disease models that incorporate human cells and do not face ethical dilemmas associated with animal use. Here, we illustrate the versatility and ease of use of a microfluidic platform for studying drug delivery using high-resolution microscopy in 3D. Using this microfluidic platform, we successfully demonstrate the specific targeting of carbonic anhydrase IX (CAIX) on cells overexpressing the protein in a tumor-mimicking chip system using affibodies, with CAIX-negative cells and non-binding affibodies as controls. Furthermore, we demonstrate this system’s feasibility for testing mRNA-containing biomaterials designed to regenerate bone defects. To this end, peptide- and lipid-based mRNA formulations were successfully mixed with colloidal gelatin in microfluidic devices, while translational activity was studied by the expression of a green fluorescent protein. This microfluidic platform enables the testing of mRNA delivery from colloidal biomaterials of relatively high densities, which represents a first important step towards a bone-on-a-chip platform. Collectively, by illustrating the ease of adaptation of our microfluidic platform towards use in distinct applications, we show that our microfluidic chip represents a powerful and flexible way to investigate drug delivery in 3D disease-mimicking culture systems that recapitulate key parameters associated with in vivo drug application. MDPI 2021-11-17 /pmc/articles/PMC8624409/ /pubmed/34834361 http://dx.doi.org/10.3390/pharmaceutics13111944 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Palacio-Castañeda, Valentina
Oude Egberink, Rik
Sait, Arbaaz
Andrée, Lea
Sala, Benedetta Maria
Hassani Besheli, Negar
Oosterwijk, Egbert
Nilvebrant, Johan
Leeuwenburgh, Sander C. G.
Brock, Roland
Verdurmen, Wouter P. R.
Mimicking the Biology of Engineered Protein and mRNA Nanoparticle Delivery Using a Versatile Microfluidic Platform
title Mimicking the Biology of Engineered Protein and mRNA Nanoparticle Delivery Using a Versatile Microfluidic Platform
title_full Mimicking the Biology of Engineered Protein and mRNA Nanoparticle Delivery Using a Versatile Microfluidic Platform
title_fullStr Mimicking the Biology of Engineered Protein and mRNA Nanoparticle Delivery Using a Versatile Microfluidic Platform
title_full_unstemmed Mimicking the Biology of Engineered Protein and mRNA Nanoparticle Delivery Using a Versatile Microfluidic Platform
title_short Mimicking the Biology of Engineered Protein and mRNA Nanoparticle Delivery Using a Versatile Microfluidic Platform
title_sort mimicking the biology of engineered protein and mrna nanoparticle delivery using a versatile microfluidic platform
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8624409/
https://www.ncbi.nlm.nih.gov/pubmed/34834361
http://dx.doi.org/10.3390/pharmaceutics13111944
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