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Understanding the Structure and Mechanism of Formation of a New Magnetic Microbubble Formulation

Magnetic nanoparticles and ultrasound contrast agents have both been used as vehicles for therapeutic delivery. More recently, magnetic microbubbles have been developed as a new theranostic agent which combines the advantages of the individual carriers and overcomes many of their limitations. In a p...

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Autores principales: Owen, Joshua, Zhou, Bin, Rademeyer, Paul, Tang, Meng-Xing, Pankhurst, Quentin, Eckersley, Robert, Stride, Eleanor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3563147/
https://www.ncbi.nlm.nih.gov/pubmed/23382771
http://dx.doi.org/10.7150/thno.4307
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author Owen, Joshua
Zhou, Bin
Rademeyer, Paul
Tang, Meng-Xing
Pankhurst, Quentin
Eckersley, Robert
Stride, Eleanor
author_facet Owen, Joshua
Zhou, Bin
Rademeyer, Paul
Tang, Meng-Xing
Pankhurst, Quentin
Eckersley, Robert
Stride, Eleanor
author_sort Owen, Joshua
collection PubMed
description Magnetic nanoparticles and ultrasound contrast agents have both been used as vehicles for therapeutic delivery. More recently, magnetic microbubbles have been developed as a new theranostic agent which combines the advantages of the individual carriers and overcomes many of their limitations. In a previous study of gene delivery using magnetic microbubbles, it was found that a combination of magnetic liquid droplets and non-magnetic phospholipid microbubbles produced higher transfection rates than magnetic microbubbles. The reasons for this were not fully understood, however. The aim of this study was to investigate the hypothesis that conjugation between the droplets and the microbubbles occurred. A combination of optical and fluorescence microscopy and ultrasound imaging studies in a flow phantom were performed. No interaction between magnetic droplets and microbubbles was observed under optical microscopy but the results from the fluorescence and acoustic imaging indicated that magnetic droplets and microbubbles do indeed combine to form a new magnetically and acoustically responsive particle. Theoretical calculations indicate that the driving force of the interaction is the relative surface energy and thus thermodynamic stability of the microbubbles and the droplets. The new particles were resistant to centrifugation, of comparable echogenicity to conventional ultrasound contrast agents and could be retained by a magnetic field (0.2T) in a flow phantom at centre line velocities of ~6 cm s(-1) and shear rates of ~60 s( -1).
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spelling pubmed-35631472013-02-04 Understanding the Structure and Mechanism of Formation of a New Magnetic Microbubble Formulation Owen, Joshua Zhou, Bin Rademeyer, Paul Tang, Meng-Xing Pankhurst, Quentin Eckersley, Robert Stride, Eleanor Theranostics Research Paper Magnetic nanoparticles and ultrasound contrast agents have both been used as vehicles for therapeutic delivery. More recently, magnetic microbubbles have been developed as a new theranostic agent which combines the advantages of the individual carriers and overcomes many of their limitations. In a previous study of gene delivery using magnetic microbubbles, it was found that a combination of magnetic liquid droplets and non-magnetic phospholipid microbubbles produced higher transfection rates than magnetic microbubbles. The reasons for this were not fully understood, however. The aim of this study was to investigate the hypothesis that conjugation between the droplets and the microbubbles occurred. A combination of optical and fluorescence microscopy and ultrasound imaging studies in a flow phantom were performed. No interaction between magnetic droplets and microbubbles was observed under optical microscopy but the results from the fluorescence and acoustic imaging indicated that magnetic droplets and microbubbles do indeed combine to form a new magnetically and acoustically responsive particle. Theoretical calculations indicate that the driving force of the interaction is the relative surface energy and thus thermodynamic stability of the microbubbles and the droplets. The new particles were resistant to centrifugation, of comparable echogenicity to conventional ultrasound contrast agents and could be retained by a magnetic field (0.2T) in a flow phantom at centre line velocities of ~6 cm s(-1) and shear rates of ~60 s( -1). Ivyspring International Publisher 2012-12-10 /pmc/articles/PMC3563147/ /pubmed/23382771 http://dx.doi.org/10.7150/thno.4307 Text en © Ivyspring International Publisher. This is an open-access article distributed under the terms of the Creative Commons License (http://creativecommons.org/licenses/by-nc-nd/3.0/). Reproduction is permitted for personal, noncommercial use, provided that the article is in whole, unmodified, and properly cited.
spellingShingle Research Paper
Owen, Joshua
Zhou, Bin
Rademeyer, Paul
Tang, Meng-Xing
Pankhurst, Quentin
Eckersley, Robert
Stride, Eleanor
Understanding the Structure and Mechanism of Formation of a New Magnetic Microbubble Formulation
title Understanding the Structure and Mechanism of Formation of a New Magnetic Microbubble Formulation
title_full Understanding the Structure and Mechanism of Formation of a New Magnetic Microbubble Formulation
title_fullStr Understanding the Structure and Mechanism of Formation of a New Magnetic Microbubble Formulation
title_full_unstemmed Understanding the Structure and Mechanism of Formation of a New Magnetic Microbubble Formulation
title_short Understanding the Structure and Mechanism of Formation of a New Magnetic Microbubble Formulation
title_sort understanding the structure and mechanism of formation of a new magnetic microbubble formulation
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3563147/
https://www.ncbi.nlm.nih.gov/pubmed/23382771
http://dx.doi.org/10.7150/thno.4307
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