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Bubble cloud characteristics and ablation efficiency in dual-frequency intrinsic threshold histotripsy

Histotripsy is a non-thermal focused ultrasound ablation method that destroys tissue through the generation and activity of acoustic cavitation bubble clouds. Intrinsic threshold histotripsy uses single-cycle pulses to generate bubble clouds when the dominant negative pressure phase exceeds an intri...

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Autores principales: Edsall, Connor, Huynh, Laura, Hall, Timothy L, Vlaisavljevich, Eli
Formato: Online Artículo Texto
Lenguaje:English
Publicado: IOP Publishing 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10627095/
https://www.ncbi.nlm.nih.gov/pubmed/37797649
http://dx.doi.org/10.1088/1361-6560/ad00a5
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author Edsall, Connor
Huynh, Laura
Hall, Timothy L
Vlaisavljevich, Eli
author_facet Edsall, Connor
Huynh, Laura
Hall, Timothy L
Vlaisavljevich, Eli
author_sort Edsall, Connor
collection PubMed
description Histotripsy is a non-thermal focused ultrasound ablation method that destroys tissue through the generation and activity of acoustic cavitation bubble clouds. Intrinsic threshold histotripsy uses single-cycle pulses to generate bubble clouds when the dominant negative pressure phase exceeds an intrinsic threshold of ∼25–30 MPa. The ablation efficiency is dependent upon the size and density of bubbles within the bubble cloud. This work investigates the effects of dual-frequency pulsing schemes on the bubble cloud behavior and ablation efficiency in intrinsic threshold histotripsy. A modular 500 kHz:3 MHz histotripsy transducer treated agarose phantoms using dual-frequency histotripsy pulses with a 1:1 pressure ratio from 500 kHz and 3 MHz frequency elements and varying arrival times for the 3 MHz pulse relative to the arrival of the 500 kHz pulse (−100 ns, 0 ns, and +100 ns). High-speed optical imaging captured cavitation effects to characterize bubble cloud and individual bubble dynamics. The effects of dual-frequency pulsing on lesion formation and ablation efficiency were also investigated in red blood cell (RBC) phantoms. Results showed that the single bubble and bubble cloud size for dual-frequency cases were intermediate to published results for the component single-frequencies of 500 kHz and 3 MHz. Additionally, bubble cloud size and dynamics were shown to be altered by the arrival time of the 3 MHz pulse with respect to the 500 kHz pulse, with more uniform cloud expansion and collapse observed for early (−100 ns) arrival. Finally, RBC phantom experiments showed that dual-frequency exposures were capable of generating precise lesions with smaller areas and higher ablation efficiencies than previously published results for 500 kHz or 3 MHz. Overall, results demonstrate dual-frequency histotripsy’s ability to modulate bubble cloud size and dynamics can be leveraged to produce precise lesions at higher ablation efficiencies than previously observed for single-frequency pulsing.
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spelling pubmed-106270952023-11-07 Bubble cloud characteristics and ablation efficiency in dual-frequency intrinsic threshold histotripsy Edsall, Connor Huynh, Laura Hall, Timothy L Vlaisavljevich, Eli Phys Med Biol Paper Histotripsy is a non-thermal focused ultrasound ablation method that destroys tissue through the generation and activity of acoustic cavitation bubble clouds. Intrinsic threshold histotripsy uses single-cycle pulses to generate bubble clouds when the dominant negative pressure phase exceeds an intrinsic threshold of ∼25–30 MPa. The ablation efficiency is dependent upon the size and density of bubbles within the bubble cloud. This work investigates the effects of dual-frequency pulsing schemes on the bubble cloud behavior and ablation efficiency in intrinsic threshold histotripsy. A modular 500 kHz:3 MHz histotripsy transducer treated agarose phantoms using dual-frequency histotripsy pulses with a 1:1 pressure ratio from 500 kHz and 3 MHz frequency elements and varying arrival times for the 3 MHz pulse relative to the arrival of the 500 kHz pulse (−100 ns, 0 ns, and +100 ns). High-speed optical imaging captured cavitation effects to characterize bubble cloud and individual bubble dynamics. The effects of dual-frequency pulsing on lesion formation and ablation efficiency were also investigated in red blood cell (RBC) phantoms. Results showed that the single bubble and bubble cloud size for dual-frequency cases were intermediate to published results for the component single-frequencies of 500 kHz and 3 MHz. Additionally, bubble cloud size and dynamics were shown to be altered by the arrival time of the 3 MHz pulse with respect to the 500 kHz pulse, with more uniform cloud expansion and collapse observed for early (−100 ns) arrival. Finally, RBC phantom experiments showed that dual-frequency exposures were capable of generating precise lesions with smaller areas and higher ablation efficiencies than previously published results for 500 kHz or 3 MHz. Overall, results demonstrate dual-frequency histotripsy’s ability to modulate bubble cloud size and dynamics can be leveraged to produce precise lesions at higher ablation efficiencies than previously observed for single-frequency pulsing. IOP Publishing 2023-11-21 2023-11-06 /pmc/articles/PMC10627095/ /pubmed/37797649 http://dx.doi.org/10.1088/1361-6560/ad00a5 Text en © 2023 The Author(s). Published on behalf of Institute of Physics and Engineering in Medicine by IOP Publishing Ltd https://creativecommons.org/licenses/by/4.0/Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 licence (https://creativecommons.org/licenses/by/4.0/) . Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
spellingShingle Paper
Edsall, Connor
Huynh, Laura
Hall, Timothy L
Vlaisavljevich, Eli
Bubble cloud characteristics and ablation efficiency in dual-frequency intrinsic threshold histotripsy
title Bubble cloud characteristics and ablation efficiency in dual-frequency intrinsic threshold histotripsy
title_full Bubble cloud characteristics and ablation efficiency in dual-frequency intrinsic threshold histotripsy
title_fullStr Bubble cloud characteristics and ablation efficiency in dual-frequency intrinsic threshold histotripsy
title_full_unstemmed Bubble cloud characteristics and ablation efficiency in dual-frequency intrinsic threshold histotripsy
title_short Bubble cloud characteristics and ablation efficiency in dual-frequency intrinsic threshold histotripsy
title_sort bubble cloud characteristics and ablation efficiency in dual-frequency intrinsic threshold histotripsy
topic Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10627095/
https://www.ncbi.nlm.nih.gov/pubmed/37797649
http://dx.doi.org/10.1088/1361-6560/ad00a5
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