Literature DB >> 21342816

Active focal zone sharpening for high-precision treatment using histotripsy.

Tzu-Yin Wang1, Zhen Xu, Timothy Hall, J Fowlkes, William Roberts, Charles Cain.   

Abstract

The goal of this study is to develop a focal zone sharpening strategy that produces more precise lesions for pulsed cavitational ultrasound therapy, or histotripsy. Precise and well-confined lesions were produced by locally suppressing cavitation in the periphery of the treatment focus without affecting cavitation in the center. The local suppression of cavitation was achieved using cavitation nuclei preconditioning pulses to actively control cavitation in the periphery of the focus. A 1-MHz 513-element therapeutic array was used to generate both the therapy and the nuclei preconditioning pulses. For therapy, 10-cycle bursts at 100-Hz pulse repetition frequency with P-/P+ pressure of 21/76 MPa were delivered to the geometric focus of the therapeutic array. For nuclei preconditioning, a different pulse was delivered to an annular region immediately surrounding the focus before each therapy pulse. A parametric study on the effective pressure, pulse duration, and delivery time of the preconditioning pulse was conducted in red blood cell-gel phantoms, where cavitational damage was indicated by the color change resulting from local cell lysis. Results showed that a short-duration (20 μs) preconditioning pulse at a medium pressure (P-/P+ pressure of 7.2/13.6 MPa) delivered shortly before (30 μs) the therapy pulse substantially suppressed the peripheral damage by 77 ± 13% while complete fractionation in the focal center was maintained. High-speed imaging of the bubble cloud showed a substantial decrease in the maximum width of the bubble cloud by 48 ± 24% using focal zone sharpening. Experiments in ex vivo livers confirmed that highly confined lesions were produced in real tissues as well as in the phantoms. This study demonstrated the feasibility of active focal zone sharpening using cavitation nuclei preconditioning, allowing for increased treatment precision compared with the natural focal width of the therapy transducer.

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Mesh:

Year:  2011        PMID: 21342816      PMCID: PMC3145254          DOI: 10.1109/TUFFC.2011.1808

Source DB:  PubMed          Journal:  IEEE Trans Ultrason Ferroelectr Freq Control        ISSN: 0885-3010            Impact factor:   2.725


  26 in total

1.  Thresholds for transient cavitation produced by pulsed ultrasound in a controlled nuclei environment.

Authors:  C K Holland; R E Apfel
Journal:  J Acoust Soc Am       Date:  1990-11       Impact factor: 1.840

2.  Potential-well model in acoustic tweezers.

Authors:  Shih-Tsung Kang; Chih-Kuang Yeh
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2010-06       Impact factor: 2.725

3.  A tissue phantom for visualization and measurement of ultrasound-induced cavitation damage.

Authors:  Adam D Maxwell; Tzu-Yin Wang; Lingqian Yuan; Alexander P Duryea; Zhen Xu; Charles A Cain
Journal:  Ultrasound Med Biol       Date:  2010-10-28       Impact factor: 2.998

4.  Prevention of lithotripsy-induced renal injury by pretreating kidneys with low-energy shock waves.

Authors:  Lynn R Willis; Andrew P Evan; Bret A Connors; Rajash K Handa; Philip M Blomgren; James E Lingeman
Journal:  J Am Soc Nephrol       Date:  2006-02-01       Impact factor: 10.121

5.  Effect of overpressure and pulse repetition frequency on cavitation in shock wave lithotripsy.

Authors:  Oleg A Sapozhnikov; Vera A Khokhlova; Michael R Bailey; James C Williams; James A McAteer; Robin O Cleveland; Lawrence A Crum
Journal:  J Acoust Soc Am       Date:  2002-09       Impact factor: 1.840

6.  Refining histotripsy: defining the parameter space for the creation of nonthermal lesions with high intensity, pulsed focused ultrasound of the in vitro kidney.

Authors:  Kathleen Kieran; Timothy L Hall; Jessica E Parsons; J Stuart Wolf; J Brian Fowlkes; Charles A Cain; William W Roberts
Journal:  J Urol       Date:  2007-06-15       Impact factor: 7.450

7.  Effects of acoustic parameters on bubble cloud dynamics in ultrasound tissue erosion (histotripsy).

Authors:  Zhen Xu; Timothy L Hall; J Brian Fowlkes; Charles A Cain
Journal:  J Acoust Soc Am       Date:  2007-07       Impact factor: 1.840

8.  Optical and acoustic monitoring of bubble cloud dynamics at a tissue-fluid interface in ultrasound tissue erosion.

Authors:  Zhen Xu; Timothy L Hall; J Brian Fowlkes; Charles A Cain
Journal:  J Acoust Soc Am       Date:  2007-04       Impact factor: 1.840

9.  Kidney damage and renal functional changes are minimized by waveform control that suppresses cavitation in shock wave lithotripsy.

Authors:  Andrew P Evan; Lynn R Willis; James A McAteer; Michael R Bailey; Bret A Connors; Youzhi Shao; James E Lingeman; James C Williams; Naomi S Fineberg; Lawrence A Crum
Journal:  J Urol       Date:  2002-10       Impact factor: 7.450

10.  Ultrasonic characterization of ultrasound contrast agents.

Authors:  Nico de Jong; Marcia Emmer; Annemieke van Wamel; Michel Versluis
Journal:  Med Biol Eng Comput       Date:  2009-05-26       Impact factor: 2.602

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  13 in total

1.  An efficient treatment strategy for histotripsy by removing cavitation memory.

Authors:  Tzu-Yin Wang; Zhen Xu; Timothy L Hall; J Brian Fowlkes; Charles A Cain
Journal:  Ultrasound Med Biol       Date:  2012-03-06       Impact factor: 2.998

2.  Dependence of inertial cavitation induced by high intensity focused ultrasound on transducer F-number and nonlinear waveform distortion.

Authors:  Tatiana Khokhlova; Pavel Rosnitskiy; Christopher Hunter; Adam Maxwell; Wayne Kreider; Gail Ter Haar; Marcia Costa; Oleg Sapozhnikov; Vera Khokhlova
Journal:  J Acoust Soc Am       Date:  2018-09       Impact factor: 1.840

3.  Transcostal Histotripsy Ablation in an In Vivo Acute Hepatic Porcine Model.

Authors:  Emily A Knott; Katherine C Longo; Eli Vlaisavljevich; Xaiofei Zhang; John F Swietlik; Zhen Xu; Allison C Rodgers; Annie M Zlevor; Paul F Laeseke; Timothy L Hall; Fred T Lee; Timothy J Ziemlewicz
Journal:  Cardiovasc Intervent Radiol       Date:  2021-07-09       Impact factor: 2.740

4.  Lesion generation through ribs using histotripsy therapy without aberration correction.

Authors:  Yohan Kim; Tzu-Yin Wang; Zhen Xu; Charles A Cain
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2011-11       Impact factor: 2.725

5.  Acoustic Methods for Increasing the Cavitation Initiation Pressure Threshold.

Authors:  Hedieh Alavi Tamaddoni; Alexander P Duryea; Eli Vlaisavljevich; Zhen Xu; Timothy L Hall
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2018-08-29       Impact factor: 2.725

6.  Non-invasive, Rapid Ablation of Tissue Volume Using Histotripsy.

Authors:  Jonathan E Lundt; Steven P Allen; Jiaqi Shi; Timothy L Hall; Charles A Cain; Zhen Xu
Journal:  Ultrasound Med Biol       Date:  2017-09-19       Impact factor: 2.998

Review 7.  Histotripsy methods in mechanical disintegration of tissue: towards clinical applications.

Authors:  Vera A Khokhlova; J Brian Fowlkes; William W Roberts; George R Schade; Zhen Xu; Tatiana D Khokhlova; Timothy L Hall; Adam D Maxwell; Yak-Nam Wang; Charles A Cain
Journal:  Int J Hyperthermia       Date:  2015-02-24       Impact factor: 3.914

8.  Dependence of Boiling Histotripsy Treatment Efficiency on HIFU Frequency and Focal Pressure Levels.

Authors:  Tatiana D Khokhlova; Yasser A Haider; Adam D Maxwell; Wayne Kreider; Michael R Bailey; Vera A Khokhlova
Journal:  Ultrasound Med Biol       Date:  2017-06-20       Impact factor: 2.998

Review 9.  Development and translation of histotripsy: current status and future directions.

Authors:  William W Roberts
Journal:  Curr Opin Urol       Date:  2014-01       Impact factor: 2.309

10.  Summary of "Biomedical Acoustics and Physical Acoustics: Shock Waves and Ultrasound for Calculus Fragmentation".

Authors:  Julianna C Simon; Michael R Bailey
Journal:  Proc Meet Acoust       Date:  2018-11-05
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