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Focal areas of increased lipid concentration on the coating of microbubbles during short tone-burst ultrasound insonification

Acoustic behavior of lipid-coated microbubbles has been widely studied, which has led to several numerical microbubble dynamics models that incorporate lipid coating behavior, such as buckling and rupture. In this study we investigated the relationship between microbubble acoustic and lipid coating...

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Autores principales: Kooiman, Klazina, van Rooij, Tom, Qin, Bin, Mastik, Frits, Vos, Hendrik J., Versluis, Michel, Klibanov, Alexander L., de Jong, Nico, Villanueva, Flordeliza S., Chen, Xucai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5501608/
https://www.ncbi.nlm.nih.gov/pubmed/28686673
http://dx.doi.org/10.1371/journal.pone.0180747
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author Kooiman, Klazina
van Rooij, Tom
Qin, Bin
Mastik, Frits
Vos, Hendrik J.
Versluis, Michel
Klibanov, Alexander L.
de Jong, Nico
Villanueva, Flordeliza S.
Chen, Xucai
author_facet Kooiman, Klazina
van Rooij, Tom
Qin, Bin
Mastik, Frits
Vos, Hendrik J.
Versluis, Michel
Klibanov, Alexander L.
de Jong, Nico
Villanueva, Flordeliza S.
Chen, Xucai
author_sort Kooiman, Klazina
collection PubMed
description Acoustic behavior of lipid-coated microbubbles has been widely studied, which has led to several numerical microbubble dynamics models that incorporate lipid coating behavior, such as buckling and rupture. In this study we investigated the relationship between microbubble acoustic and lipid coating behavior on a nanosecond scale by using fluorescently labeled lipids. It is hypothesized that a local increased concentration of lipids, appearing as a focal area of increased fluorescence intensity (hot spot) in the fluorescence image, is related to buckling and folding of the lipid layer thereby highly influencing the microbubble acoustic behavior. To test this hypothesis, the lipid microbubble coating was fluorescently labeled. The vibration of the microbubble (n = 177; 2.3–10.3 μm in diameter) upon insonification at an ultrasound frequency of 0.5 or 1 MHz at 25 or 50 kPa acoustic pressure was recorded with the UPMC Cam, an ultra-high-speed fluorescence camera, operated at ~4–5 million frames per second. During short tone-burst excitation, hot spots on the microbubble coating occurred at relative vibration amplitudes > 0.3 irrespective of frequency and acoustic pressure. Around resonance, the majority of the microbubbles formed hot spots. When the microbubble also deflated acoustically, hot spot formation was likely irreversible. Although compression-only behavior (defined as substantially more microbubble compression than expansion) and subharmonic responses were observed in those microbubbles that formed hot spots, both phenomena were also found in microbubbles that did not form hot spots during insonification. In conclusion, this study reveals hot spot formation of the lipid monolayer in the microbubble’s compression phase. However, our experimental results show that there is no direct relationship between hot spot formation of the lipid coating and microbubble acoustic behaviors such as compression-only and the generation of a subharmonic response. Hence, our hypothesis that hot spots are related to acoustic buckling could not be verified.
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spelling pubmed-55016082017-07-25 Focal areas of increased lipid concentration on the coating of microbubbles during short tone-burst ultrasound insonification Kooiman, Klazina van Rooij, Tom Qin, Bin Mastik, Frits Vos, Hendrik J. Versluis, Michel Klibanov, Alexander L. de Jong, Nico Villanueva, Flordeliza S. Chen, Xucai PLoS One Research Article Acoustic behavior of lipid-coated microbubbles has been widely studied, which has led to several numerical microbubble dynamics models that incorporate lipid coating behavior, such as buckling and rupture. In this study we investigated the relationship between microbubble acoustic and lipid coating behavior on a nanosecond scale by using fluorescently labeled lipids. It is hypothesized that a local increased concentration of lipids, appearing as a focal area of increased fluorescence intensity (hot spot) in the fluorescence image, is related to buckling and folding of the lipid layer thereby highly influencing the microbubble acoustic behavior. To test this hypothesis, the lipid microbubble coating was fluorescently labeled. The vibration of the microbubble (n = 177; 2.3–10.3 μm in diameter) upon insonification at an ultrasound frequency of 0.5 or 1 MHz at 25 or 50 kPa acoustic pressure was recorded with the UPMC Cam, an ultra-high-speed fluorescence camera, operated at ~4–5 million frames per second. During short tone-burst excitation, hot spots on the microbubble coating occurred at relative vibration amplitudes > 0.3 irrespective of frequency and acoustic pressure. Around resonance, the majority of the microbubbles formed hot spots. When the microbubble also deflated acoustically, hot spot formation was likely irreversible. Although compression-only behavior (defined as substantially more microbubble compression than expansion) and subharmonic responses were observed in those microbubbles that formed hot spots, both phenomena were also found in microbubbles that did not form hot spots during insonification. In conclusion, this study reveals hot spot formation of the lipid monolayer in the microbubble’s compression phase. However, our experimental results show that there is no direct relationship between hot spot formation of the lipid coating and microbubble acoustic behaviors such as compression-only and the generation of a subharmonic response. Hence, our hypothesis that hot spots are related to acoustic buckling could not be verified. Public Library of Science 2017-07-07 /pmc/articles/PMC5501608/ /pubmed/28686673 http://dx.doi.org/10.1371/journal.pone.0180747 Text en © 2017 Kooiman et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Kooiman, Klazina
van Rooij, Tom
Qin, Bin
Mastik, Frits
Vos, Hendrik J.
Versluis, Michel
Klibanov, Alexander L.
de Jong, Nico
Villanueva, Flordeliza S.
Chen, Xucai
Focal areas of increased lipid concentration on the coating of microbubbles during short tone-burst ultrasound insonification
title Focal areas of increased lipid concentration on the coating of microbubbles during short tone-burst ultrasound insonification
title_full Focal areas of increased lipid concentration on the coating of microbubbles during short tone-burst ultrasound insonification
title_fullStr Focal areas of increased lipid concentration on the coating of microbubbles during short tone-burst ultrasound insonification
title_full_unstemmed Focal areas of increased lipid concentration on the coating of microbubbles during short tone-burst ultrasound insonification
title_short Focal areas of increased lipid concentration on the coating of microbubbles during short tone-burst ultrasound insonification
title_sort focal areas of increased lipid concentration on the coating of microbubbles during short tone-burst ultrasound insonification
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5501608/
https://www.ncbi.nlm.nih.gov/pubmed/28686673
http://dx.doi.org/10.1371/journal.pone.0180747
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