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Efficient gene transfection to the brain with ultrasound irradiation in mice using stabilized bubble lipopolyplexes prepared by the surface charge regulation method

INTRODUCTION: We previously developed anionic ternary bubble lipopolyplexes, an ultrasound-responsive carrier, expecting safe and efficient gene transfection. However, bubble lipopolyplexes have a low capacity for echo gas (C(3)F(8)) encapsulation (EGE) in nonionic solution such as 5% glucose. On th...

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Autores principales: Ogawa, Koki, Fuchigami, Yuki, Hagimori, Masayori, Fumoto, Shintaro, Miura, Yusuke, Kawakami, Shigeru
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5907898/
https://www.ncbi.nlm.nih.gov/pubmed/29713163
http://dx.doi.org/10.2147/IJN.S157375
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author Ogawa, Koki
Fuchigami, Yuki
Hagimori, Masayori
Fumoto, Shintaro
Miura, Yusuke
Kawakami, Shigeru
author_facet Ogawa, Koki
Fuchigami, Yuki
Hagimori, Masayori
Fumoto, Shintaro
Miura, Yusuke
Kawakami, Shigeru
author_sort Ogawa, Koki
collection PubMed
description INTRODUCTION: We previously developed anionic ternary bubble lipopolyplexes, an ultrasound-responsive carrier, expecting safe and efficient gene transfection. However, bubble lipopolyplexes have a low capacity for echo gas (C(3)F(8)) encapsulation (EGE) in nonionic solution such as 5% glucose. On the other hand, we were able to prepare bubble lipopolyplexes by inserting phosphate-buffered saline before C(3)F(8) encapsulation. Surface charge regulation (SCR) by electrolytes stabilizes liposome/plasmid DNA (pDNA) complexes by accelerated membrane fusion. Considering these facts, we hypothesized that SCR by electrolytes such as NaCl would promote C(3)F(8) encapsulation in bubble lipopolyplexes mediated by accelerated membrane fusion. We defined this hypothesis as SCR-based EGE (SCR-EGE). Bubble lipopolyplexes prepared by the SCR-EGE method (SCR-EGE bubble lipopolyplexes) are expected to facilitate the gene transfection because of the high amount of C(3)F(8). Therefore, we applied these methods for gene delivery to the brain and evaluated the characteristics of transgene expression in the brain. METHODS: First, we measured the encapsulation efficiency of C(3)F(8) in SCR-EGE bubble lipopolyplexes. Next, we applied these bubble lipopolyplexes to the mouse brain; then, we evaluated the transfection efficiency. Furthermore, three-dimensional transgene distribution was observed using multicolor deep imaging. RESULTS: SCR-EGE bubble lipopolyplexes had a higher C(3)F(8) content than conventional bubble lipopolyplexes. In terms of safety, SCR-EGE bubble lipopolyplexes possessed an anionic potential and showed no aggregation with erythrocytes. After applying SCR-EGE bubble lipopolyplexes to the brain, high transgene expression was observed by combining with ultrasound irradiation. As a result, transgene expression mediated by SCR-EGE bubble lipopolyplexes was observed mainly on blood vessels and partially outside of blood vessels. CONCLUSION: The SCR-EGE method may promote C(3)F(8) encapsulation in bubble lipopolyplexes, and SCR-EGE bubble lipopolyplexes may be potent carriers for efficient and safe gene transfection in the brain, especially to the blood vessels.
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spelling pubmed-59078982018-04-30 Efficient gene transfection to the brain with ultrasound irradiation in mice using stabilized bubble lipopolyplexes prepared by the surface charge regulation method Ogawa, Koki Fuchigami, Yuki Hagimori, Masayori Fumoto, Shintaro Miura, Yusuke Kawakami, Shigeru Int J Nanomedicine Original Research INTRODUCTION: We previously developed anionic ternary bubble lipopolyplexes, an ultrasound-responsive carrier, expecting safe and efficient gene transfection. However, bubble lipopolyplexes have a low capacity for echo gas (C(3)F(8)) encapsulation (EGE) in nonionic solution such as 5% glucose. On the other hand, we were able to prepare bubble lipopolyplexes by inserting phosphate-buffered saline before C(3)F(8) encapsulation. Surface charge regulation (SCR) by electrolytes stabilizes liposome/plasmid DNA (pDNA) complexes by accelerated membrane fusion. Considering these facts, we hypothesized that SCR by electrolytes such as NaCl would promote C(3)F(8) encapsulation in bubble lipopolyplexes mediated by accelerated membrane fusion. We defined this hypothesis as SCR-based EGE (SCR-EGE). Bubble lipopolyplexes prepared by the SCR-EGE method (SCR-EGE bubble lipopolyplexes) are expected to facilitate the gene transfection because of the high amount of C(3)F(8). Therefore, we applied these methods for gene delivery to the brain and evaluated the characteristics of transgene expression in the brain. METHODS: First, we measured the encapsulation efficiency of C(3)F(8) in SCR-EGE bubble lipopolyplexes. Next, we applied these bubble lipopolyplexes to the mouse brain; then, we evaluated the transfection efficiency. Furthermore, three-dimensional transgene distribution was observed using multicolor deep imaging. RESULTS: SCR-EGE bubble lipopolyplexes had a higher C(3)F(8) content than conventional bubble lipopolyplexes. In terms of safety, SCR-EGE bubble lipopolyplexes possessed an anionic potential and showed no aggregation with erythrocytes. After applying SCR-EGE bubble lipopolyplexes to the brain, high transgene expression was observed by combining with ultrasound irradiation. As a result, transgene expression mediated by SCR-EGE bubble lipopolyplexes was observed mainly on blood vessels and partially outside of blood vessels. CONCLUSION: The SCR-EGE method may promote C(3)F(8) encapsulation in bubble lipopolyplexes, and SCR-EGE bubble lipopolyplexes may be potent carriers for efficient and safe gene transfection in the brain, especially to the blood vessels. Dove Medical Press 2018-04-16 /pmc/articles/PMC5907898/ /pubmed/29713163 http://dx.doi.org/10.2147/IJN.S157375 Text en © 2018 Ogawa et al. This work is published and licensed by Dove Medical Press Limited The full terms of this license are available at https://www.dovepress.com/terms.php and incorporate the Creative Commons Attribution – Non Commercial (unported, v3.0) License (http://creativecommons.org/licenses/by-nc/3.0/). By accessing the work you hereby accept the Terms. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed.
spellingShingle Original Research
Ogawa, Koki
Fuchigami, Yuki
Hagimori, Masayori
Fumoto, Shintaro
Miura, Yusuke
Kawakami, Shigeru
Efficient gene transfection to the brain with ultrasound irradiation in mice using stabilized bubble lipopolyplexes prepared by the surface charge regulation method
title Efficient gene transfection to the brain with ultrasound irradiation in mice using stabilized bubble lipopolyplexes prepared by the surface charge regulation method
title_full Efficient gene transfection to the brain with ultrasound irradiation in mice using stabilized bubble lipopolyplexes prepared by the surface charge regulation method
title_fullStr Efficient gene transfection to the brain with ultrasound irradiation in mice using stabilized bubble lipopolyplexes prepared by the surface charge regulation method
title_full_unstemmed Efficient gene transfection to the brain with ultrasound irradiation in mice using stabilized bubble lipopolyplexes prepared by the surface charge regulation method
title_short Efficient gene transfection to the brain with ultrasound irradiation in mice using stabilized bubble lipopolyplexes prepared by the surface charge regulation method
title_sort efficient gene transfection to the brain with ultrasound irradiation in mice using stabilized bubble lipopolyplexes prepared by the surface charge regulation method
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5907898/
https://www.ncbi.nlm.nih.gov/pubmed/29713163
http://dx.doi.org/10.2147/IJN.S157375
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