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Targeting of Magnetic Nanoparticle-coated Microbubbles to the Vascular Wall Empowers Site-specific Lentiviral Gene Delivery in vivo

In the field of vascular gene therapy, targeting systems are promising advancements to improve site-specificity of gene delivery. Here, we studied whether incorporation of magnetic nanoparticles (MNP) with different magnetic properties into ultrasound sensitive microbubbles may represent an efficien...

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Autores principales: Heun, Yvonn, Hildebrand, Staffan, Heidsieck, Alexandra, Gleich, Bernhard, Anton, Martina, Pircher, Joachim, Ribeiro, Andrea, Mykhaylyk, Olga, Eberbeck, Dietmar, Wenzel, Daniela, Pfeifer, Alexander, Woernle, Markus, Krötz, Florian, Pohl, Ulrich, Mannell, Hanna
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5197065/
https://www.ncbi.nlm.nih.gov/pubmed/28042335
http://dx.doi.org/10.7150/thno.16192
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author Heun, Yvonn
Hildebrand, Staffan
Heidsieck, Alexandra
Gleich, Bernhard
Anton, Martina
Pircher, Joachim
Ribeiro, Andrea
Mykhaylyk, Olga
Eberbeck, Dietmar
Wenzel, Daniela
Pfeifer, Alexander
Woernle, Markus
Krötz, Florian
Pohl, Ulrich
Mannell, Hanna
author_facet Heun, Yvonn
Hildebrand, Staffan
Heidsieck, Alexandra
Gleich, Bernhard
Anton, Martina
Pircher, Joachim
Ribeiro, Andrea
Mykhaylyk, Olga
Eberbeck, Dietmar
Wenzel, Daniela
Pfeifer, Alexander
Woernle, Markus
Krötz, Florian
Pohl, Ulrich
Mannell, Hanna
author_sort Heun, Yvonn
collection PubMed
description In the field of vascular gene therapy, targeting systems are promising advancements to improve site-specificity of gene delivery. Here, we studied whether incorporation of magnetic nanoparticles (MNP) with different magnetic properties into ultrasound sensitive microbubbles may represent an efficient way to enable gene targeting in the vascular system after systemic application. Thus, we associated novel silicon oxide-coated magnetic nanoparticle containing microbubbles (SO-Mag MMB) with lentiviral particles carrying therapeutic genes and determined their physico-chemical as well as biological properties compared to MMB coated with polyethylenimine-coated magnetic nanoparticles (PEI-Mag MMB). While there were no differences between both MMB types concerning size and lentivirus binding, SO-Mag MMB exhibited superior characteristics regarding magnetic moment, magnetizability as well as transduction efficiency under static and flow conditions in vitro. Focal disruption of lentiviral SO-Mag MMB by ultrasound within isolated vessels exposed to an external magnetic field decisively improved localized VEGF expression in aortic endothelium ex vivo and enhanced the angiogenic response. Using the same system in vivo, we achieved a highly effective, site-specific lentiviral transgene expression in microvessels of the mouse dorsal skin after arterial injection. Thus, we established a novel lentiviral MMB technique, which has great potential towards site-directed vascular gene therapy.
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spelling pubmed-51970652017-01-01 Targeting of Magnetic Nanoparticle-coated Microbubbles to the Vascular Wall Empowers Site-specific Lentiviral Gene Delivery in vivo Heun, Yvonn Hildebrand, Staffan Heidsieck, Alexandra Gleich, Bernhard Anton, Martina Pircher, Joachim Ribeiro, Andrea Mykhaylyk, Olga Eberbeck, Dietmar Wenzel, Daniela Pfeifer, Alexander Woernle, Markus Krötz, Florian Pohl, Ulrich Mannell, Hanna Theranostics Research Paper In the field of vascular gene therapy, targeting systems are promising advancements to improve site-specificity of gene delivery. Here, we studied whether incorporation of magnetic nanoparticles (MNP) with different magnetic properties into ultrasound sensitive microbubbles may represent an efficient way to enable gene targeting in the vascular system after systemic application. Thus, we associated novel silicon oxide-coated magnetic nanoparticle containing microbubbles (SO-Mag MMB) with lentiviral particles carrying therapeutic genes and determined their physico-chemical as well as biological properties compared to MMB coated with polyethylenimine-coated magnetic nanoparticles (PEI-Mag MMB). While there were no differences between both MMB types concerning size and lentivirus binding, SO-Mag MMB exhibited superior characteristics regarding magnetic moment, magnetizability as well as transduction efficiency under static and flow conditions in vitro. Focal disruption of lentiviral SO-Mag MMB by ultrasound within isolated vessels exposed to an external magnetic field decisively improved localized VEGF expression in aortic endothelium ex vivo and enhanced the angiogenic response. Using the same system in vivo, we achieved a highly effective, site-specific lentiviral transgene expression in microvessels of the mouse dorsal skin after arterial injection. Thus, we established a novel lentiviral MMB technique, which has great potential towards site-directed vascular gene therapy. Ivyspring International Publisher 2017-01-01 /pmc/articles/PMC5197065/ /pubmed/28042335 http://dx.doi.org/10.7150/thno.16192 Text en © Ivyspring International Publisher. Reproduction is permitted for personal, noncommercial use, provided that the article is in whole, unmodified, and properly cited. See http://ivyspring.com/terms for terms and conditions.
spellingShingle Research Paper
Heun, Yvonn
Hildebrand, Staffan
Heidsieck, Alexandra
Gleich, Bernhard
Anton, Martina
Pircher, Joachim
Ribeiro, Andrea
Mykhaylyk, Olga
Eberbeck, Dietmar
Wenzel, Daniela
Pfeifer, Alexander
Woernle, Markus
Krötz, Florian
Pohl, Ulrich
Mannell, Hanna
Targeting of Magnetic Nanoparticle-coated Microbubbles to the Vascular Wall Empowers Site-specific Lentiviral Gene Delivery in vivo
title Targeting of Magnetic Nanoparticle-coated Microbubbles to the Vascular Wall Empowers Site-specific Lentiviral Gene Delivery in vivo
title_full Targeting of Magnetic Nanoparticle-coated Microbubbles to the Vascular Wall Empowers Site-specific Lentiviral Gene Delivery in vivo
title_fullStr Targeting of Magnetic Nanoparticle-coated Microbubbles to the Vascular Wall Empowers Site-specific Lentiviral Gene Delivery in vivo
title_full_unstemmed Targeting of Magnetic Nanoparticle-coated Microbubbles to the Vascular Wall Empowers Site-specific Lentiviral Gene Delivery in vivo
title_short Targeting of Magnetic Nanoparticle-coated Microbubbles to the Vascular Wall Empowers Site-specific Lentiviral Gene Delivery in vivo
title_sort targeting of magnetic nanoparticle-coated microbubbles to the vascular wall empowers site-specific lentiviral gene delivery in vivo
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5197065/
https://www.ncbi.nlm.nih.gov/pubmed/28042335
http://dx.doi.org/10.7150/thno.16192
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