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Intracellular processing of silica-coated superparamagnetic iron nanoparticles in human mesenchymal stem cells

Silica-coated superparamagnetic iron nanoparticles (SiMAGs) are an exciting biomedical technology capable of targeted delivery of cell-based therapeutics and disease diagnosis. However, in order to realise their full clinical potential, their intracellular fate must be determined. The analytical tec...

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Autores principales: Harrison, Richard P., Chauhan, Veeren M., Onion, David, Aylott, Jonathan W., Sottile, Virginie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6350623/
https://www.ncbi.nlm.nih.gov/pubmed/30774937
http://dx.doi.org/10.1039/c8ra09089k
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author Harrison, Richard P.
Chauhan, Veeren M.
Onion, David
Aylott, Jonathan W.
Sottile, Virginie
author_facet Harrison, Richard P.
Chauhan, Veeren M.
Onion, David
Aylott, Jonathan W.
Sottile, Virginie
author_sort Harrison, Richard P.
collection PubMed
description Silica-coated superparamagnetic iron nanoparticles (SiMAGs) are an exciting biomedical technology capable of targeted delivery of cell-based therapeutics and disease diagnosis. However, in order to realise their full clinical potential, their intracellular fate must be determined. The analytical techniques of super-resolution fluorescence microscopy, particle counting flow cytometry and pH-sensitive nanosensors were applied to elucidate mechanisms of intracellular SiMAG processing in human mesenchymal stem cell (hMSCs). Super-resolution microscopy showed SiMAG fluorescently-tagged nanoparticles are endocytosed and co-localised within lysosomes. When exposed to simulated lysosomal conditions SiMAGs were solubilised and exhibited diminishing fluorescence emission over 7 days. The in vitro intracellular metabolism of SiMAGs was monitored in hMSCs using flow cytometry and co-localised pH-sensitive nanosensors. A decrease in SiMAG fluorescence emission, which corresponded to a decrease in lysosomal pH was observed, mirroring ex vivo observations, suggesting SiMAG lysosomal exposure degrades fluorescent silica-coatings and iron cores. These findings indicate although there is a significant decrease in intracellular SiMAG loading, sufficient particles remain internalised (>50%) to render SiMAG treated cells amenable to long-term magnetic cell manipulation. Our analytical approach provides important insights into the understanding of the intracellular fate of SiMAG processing, which could be readily applied to other particle therapeutics, to advance their clinical translation.
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spelling pubmed-63506232019-02-15 Intracellular processing of silica-coated superparamagnetic iron nanoparticles in human mesenchymal stem cells Harrison, Richard P. Chauhan, Veeren M. Onion, David Aylott, Jonathan W. Sottile, Virginie RSC Adv Chemistry Silica-coated superparamagnetic iron nanoparticles (SiMAGs) are an exciting biomedical technology capable of targeted delivery of cell-based therapeutics and disease diagnosis. However, in order to realise their full clinical potential, their intracellular fate must be determined. The analytical techniques of super-resolution fluorescence microscopy, particle counting flow cytometry and pH-sensitive nanosensors were applied to elucidate mechanisms of intracellular SiMAG processing in human mesenchymal stem cell (hMSCs). Super-resolution microscopy showed SiMAG fluorescently-tagged nanoparticles are endocytosed and co-localised within lysosomes. When exposed to simulated lysosomal conditions SiMAGs were solubilised and exhibited diminishing fluorescence emission over 7 days. The in vitro intracellular metabolism of SiMAGs was monitored in hMSCs using flow cytometry and co-localised pH-sensitive nanosensors. A decrease in SiMAG fluorescence emission, which corresponded to a decrease in lysosomal pH was observed, mirroring ex vivo observations, suggesting SiMAG lysosomal exposure degrades fluorescent silica-coatings and iron cores. These findings indicate although there is a significant decrease in intracellular SiMAG loading, sufficient particles remain internalised (>50%) to render SiMAG treated cells amenable to long-term magnetic cell manipulation. Our analytical approach provides important insights into the understanding of the intracellular fate of SiMAG processing, which could be readily applied to other particle therapeutics, to advance their clinical translation. The Royal Society of Chemistry 2019-01-23 /pmc/articles/PMC6350623/ /pubmed/30774937 http://dx.doi.org/10.1039/c8ra09089k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Harrison, Richard P.
Chauhan, Veeren M.
Onion, David
Aylott, Jonathan W.
Sottile, Virginie
Intracellular processing of silica-coated superparamagnetic iron nanoparticles in human mesenchymal stem cells
title Intracellular processing of silica-coated superparamagnetic iron nanoparticles in human mesenchymal stem cells
title_full Intracellular processing of silica-coated superparamagnetic iron nanoparticles in human mesenchymal stem cells
title_fullStr Intracellular processing of silica-coated superparamagnetic iron nanoparticles in human mesenchymal stem cells
title_full_unstemmed Intracellular processing of silica-coated superparamagnetic iron nanoparticles in human mesenchymal stem cells
title_short Intracellular processing of silica-coated superparamagnetic iron nanoparticles in human mesenchymal stem cells
title_sort intracellular processing of silica-coated superparamagnetic iron nanoparticles in human mesenchymal stem cells
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6350623/
https://www.ncbi.nlm.nih.gov/pubmed/30774937
http://dx.doi.org/10.1039/c8ra09089k
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