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Nanoparticle Dynamics in Composite Hydrogels Exposed to Low-Frequency Focused Ultrasound

Pulsed focused ultrasound (FUS) in combination with microbubbles has been shown to improve delivery and penetration of nanoparticles in tumors. To understand the mechanisms behind this treatment, it is important to evaluate the contribution of FUS without microbubbles on increased nanoparticle penet...

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Autores principales: Einen, Caroline, Price, Sebastian E. N., Ulvik, Kim, Gjennestad, Magnus Aa., Hansen, Rune, Kjelstrup, Signe, Davies, Catharina de Lange
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10606116/
https://www.ncbi.nlm.nih.gov/pubmed/37888344
http://dx.doi.org/10.3390/gels9100771
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author Einen, Caroline
Price, Sebastian E. N.
Ulvik, Kim
Gjennestad, Magnus Aa.
Hansen, Rune
Kjelstrup, Signe
Davies, Catharina de Lange
author_facet Einen, Caroline
Price, Sebastian E. N.
Ulvik, Kim
Gjennestad, Magnus Aa.
Hansen, Rune
Kjelstrup, Signe
Davies, Catharina de Lange
author_sort Einen, Caroline
collection PubMed
description Pulsed focused ultrasound (FUS) in combination with microbubbles has been shown to improve delivery and penetration of nanoparticles in tumors. To understand the mechanisms behind this treatment, it is important to evaluate the contribution of FUS without microbubbles on increased nanoparticle penetration and transport in the tumor extracellular matrix (ECM). A composite agarose hydrogel was made to model the porous structure, the acoustic attenuation and the hydraulic conductivity of the tumor ECM. Single-particle tracking was used as a novel method to monitor nanoparticle dynamics in the hydrogel during FUS exposure. FUS exposure at 1 MHz and 1 MPa was performed to detect any increase in nanoparticle diffusion or particle streaming at acoustic parameters relevant for FUS in combination with microbubbles. Results were compared to a model of acoustic streaming. The nanoparticles displayed anomalous diffusion in the hydrogel, and FUS with a duty cycle of 20% increased the nanoparticle diffusion coefficient by 23%. No increase in diffusion was found for lower duty cycles. FUS displaced the hydrogel itself at duty cycles above 10%; however, acoustic streaming was found to be negligible. In conclusion, pulsed FUS alone cannot explain the enhanced penetration of nanoparticles seen when using FUS and microbubbles for nanoparticle delivery, but it could be used as a tool to enhance diffusion of particles in the tumor ECM.
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spelling pubmed-106061162023-10-28 Nanoparticle Dynamics in Composite Hydrogels Exposed to Low-Frequency Focused Ultrasound Einen, Caroline Price, Sebastian E. N. Ulvik, Kim Gjennestad, Magnus Aa. Hansen, Rune Kjelstrup, Signe Davies, Catharina de Lange Gels Article Pulsed focused ultrasound (FUS) in combination with microbubbles has been shown to improve delivery and penetration of nanoparticles in tumors. To understand the mechanisms behind this treatment, it is important to evaluate the contribution of FUS without microbubbles on increased nanoparticle penetration and transport in the tumor extracellular matrix (ECM). A composite agarose hydrogel was made to model the porous structure, the acoustic attenuation and the hydraulic conductivity of the tumor ECM. Single-particle tracking was used as a novel method to monitor nanoparticle dynamics in the hydrogel during FUS exposure. FUS exposure at 1 MHz and 1 MPa was performed to detect any increase in nanoparticle diffusion or particle streaming at acoustic parameters relevant for FUS in combination with microbubbles. Results were compared to a model of acoustic streaming. The nanoparticles displayed anomalous diffusion in the hydrogel, and FUS with a duty cycle of 20% increased the nanoparticle diffusion coefficient by 23%. No increase in diffusion was found for lower duty cycles. FUS displaced the hydrogel itself at duty cycles above 10%; however, acoustic streaming was found to be negligible. In conclusion, pulsed FUS alone cannot explain the enhanced penetration of nanoparticles seen when using FUS and microbubbles for nanoparticle delivery, but it could be used as a tool to enhance diffusion of particles in the tumor ECM. MDPI 2023-09-22 /pmc/articles/PMC10606116/ /pubmed/37888344 http://dx.doi.org/10.3390/gels9100771 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Einen, Caroline
Price, Sebastian E. N.
Ulvik, Kim
Gjennestad, Magnus Aa.
Hansen, Rune
Kjelstrup, Signe
Davies, Catharina de Lange
Nanoparticle Dynamics in Composite Hydrogels Exposed to Low-Frequency Focused Ultrasound
title Nanoparticle Dynamics in Composite Hydrogels Exposed to Low-Frequency Focused Ultrasound
title_full Nanoparticle Dynamics in Composite Hydrogels Exposed to Low-Frequency Focused Ultrasound
title_fullStr Nanoparticle Dynamics in Composite Hydrogels Exposed to Low-Frequency Focused Ultrasound
title_full_unstemmed Nanoparticle Dynamics in Composite Hydrogels Exposed to Low-Frequency Focused Ultrasound
title_short Nanoparticle Dynamics in Composite Hydrogels Exposed to Low-Frequency Focused Ultrasound
title_sort nanoparticle dynamics in composite hydrogels exposed to low-frequency focused ultrasound
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10606116/
https://www.ncbi.nlm.nih.gov/pubmed/37888344
http://dx.doi.org/10.3390/gels9100771
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