Literature DB >> 24474132

Histotripsy beyond the intrinsic cavitation threshold using very short ultrasound pulses: microtripsy.

Kuang-Wei Lin, Yohan Kim, Adam D Maxwell, Tzu-Yin Wang, Timothy L Hall, Zhen Xu, J Brian Fowlkes, Charles A Cain.   

Abstract

Histotripsy produces tissue fractionation through dense energetic bubble clouds generated by short, high-pressure, ultrasound pulses. Conventional histotripsy treatments have used longer pulses from 3 to 10 cycles, wherein the lesion-producing bubble cloud generation depends on the pressure-release scattering of very high peak positive shock fronts from previously initiated, sparsely distributed bubbles (the shock-scattering mechanism). In our recent work, the peak negative pressure (P-) for generation of dense bubble clouds directly by a single negative half cycle, the intrinsic threshold, was measured. In this paper, the dense bubble clouds and resulting lesions (in red blood cell phantoms and canine tissues) generated by these supra-intrinsic threshold pulses were studied. A 32-element, PZT-8, 500-kHz therapy transducer was used to generate very short (<2 cycles) histotripsy pulses at a pulse repetition frequency (PRF) of 1 Hz and P- from 24.5 to 80.7 MPa. The results showed that the spatial extent of the histotripsy-induced lesions increased as the applied P- increased, and the sizes of these lesions corresponded well to the estimates of the focal regions above the intrinsic cavitation threshold, at least in the lower pressure regime (P- = 26 to 35 MPa). The average sizes for the smallest reproducible lesions were approximately 0.9 × 1.7 mm (lateral × axial), significantly smaller than the -6-dB beamwidth of the transducer (1.8 × 4.0 mm). These results suggest that, using the intrinsic threshold mechanism, well-confined and microscopic lesions can be precisely generated and their spatial extent can be estimated based on the fraction of the focal region exceeding the intrinsic cavitation threshold. Because the supra-threshold portion of the negative half cycle can be precisely controlled, lesions considerably less than a wavelength are easily produced, hence the term microtripsy.

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Year:  2014        PMID: 24474132      PMCID: PMC3966303          DOI: 10.1109/TUFFC.2014.6722611

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


  21 in total

1.  Controlled ultrasound tissue erosion.

Authors:  Zhen Xu; Achiau Ludomirsky; Lucy Y Eun; Timothy L Hall; Binh C Tran; J Brian Fowlkes; Charles A Cain
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2004-06       Impact factor: 2.725

2.  Focused ultrasound ablation of renal and prostate cancer: current technology and future directions.

Authors:  William W Roberts
Journal:  Urol Oncol       Date:  2005 Sep-Oct       Impact factor: 3.498

3.  Pulsed cavitational ultrasound therapy for controlled tissue homogenization.

Authors:  Jessica E Parsons; Charles A Cain; Gerald D Abrams; J Brian Fowlkes
Journal:  Ultrasound Med Biol       Date:  2006-01       Impact factor: 2.998

4.  Investigation of intensity thresholds for ultrasound tissue erosion.

Authors:  Zhen Xu; J Brian Fowlkes; Achi Ludomirsky; Charles A Cain
Journal:  Ultrasound Med Biol       Date:  2005-12       Impact factor: 2.998

5.  A real-time measure of cavitation induced tissue disruption by ultrasound imaging backscatter reduction.

Authors:  Timothy L Hall; J Brian Fowlkes; Charles A Cain
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2007-03       Impact factor: 2.725

6.  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

7.  High speed imaging of bubble clouds generated in pulsed ultrasound cavitational therapy--histotripsy.

Authors:  Zhen Xu; Mekhala Raghavan; Timothy L Hall; Ching-Wei Chang; Mary-Ann Mycek; J Brian Fowlkes; Charles A Cain
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2007-10       Impact factor: 2.725

8.  Probability of cavitation for single ultrasound pulses applied to tissues and tissue-mimicking materials.

Authors:  Adam D Maxwell; Charles A Cain; Timothy L Hall; J Brian Fowlkes; Zhen Xu
Journal:  Ultrasound Med Biol       Date:  2013-02-04       Impact factor: 2.998

9.  Cost-effective assembly of a basic fiber-optic hydrophone for measurement of high-amplitude therapeutic ultrasound fields.

Authors:  Jessica E Parsons; Charles A Cain; J Brian Fowlkes
Journal:  J Acoust Soc Am       Date:  2006-03       Impact factor: 1.840

10.  Histotripsy: minimally invasive technology for prostatic tissue ablation in an in vivo canine model.

Authors:  Alison M Lake; Timothy L Hall; Kathleen Kieran; J Brian Fowlkes; Charles A Cain; William W Roberts
Journal:  Urology       Date:  2008-03-17       Impact factor: 2.649

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  49 in total

1.  Effect of Frequency and Focal Spacing on Transcranial Histotripsy Clot Liquefaction, Using Electronic Focal Steering.

Authors:  Tyler Gerhardson; Jonathan R Sukovich; Aditya S Pandey; Timothy L Hall; Charles A Cain; Zhen Xu
Journal:  Ultrasound Med Biol       Date:  2017-07-14       Impact factor: 2.998

2.  Histotripsy Thrombolysis on Retracted Clots.

Authors:  Xi Zhang; Gabe E Owens; Charles A Cain; Hitinder S Gurm; Jonathan Macoskey; Zhen Xu
Journal:  Ultrasound Med Biol       Date:  2016-05-07       Impact factor: 2.998

3.  Candle Soot Carbon Nanoparticles in Photoacoustics: Advantages and Challenges for Laser Ultrasound Transmitters.

Authors:  Jinwook Kim; Howuk Kim; Wei-Yi Chang; Wenbin Huang; Xiaoning Jiang; Paul A Dayton
Journal:  IEEE Nanotechnol Mag       Date:  2019-04-11

4.  Enhanced Shock Scattering Histotripsy With Pseudomonopolar Ultrasound Pulses.

Authors:  Yige Li; Timothy L Hall; Zhen Xu; Charles A Cain
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2019-04-15       Impact factor: 2.725

5.  Histotripsy Clot Liquefaction in a Porcine Intracerebral Hemorrhage Model.

Authors:  Tyler Gerhardson; Jonathan R Sukovich; Neeraj Chaudhary; Thomas L Chenevert; Kim Ives; Timothy L Hall; Sandra Camelo-Piragua; Zhen Xu; Aditya S Pandey
Journal:  Neurosurgery       Date:  2020-03-01       Impact factor: 4.654

Review 6.  For Whom the Bubble Grows: Physical Principles of Bubble Nucleation and Dynamics in Histotripsy Ultrasound Therapy.

Authors:  Kenneth B Bader; Eli Vlaisavljevich; Adam D Maxwell
Journal:  Ultrasound Med Biol       Date:  2019-03-26       Impact factor: 2.998

7.  Effects of ultrasound frequency and tissue stiffness on the histotripsy intrinsic threshold for cavitation.

Authors:  Eli Vlaisavljevich; Kuang-Wei Lin; Adam Maxwell; Matthew T Warnez; Lauren Mancia; Rahul Singh; Andrew J Putnam; Brian Fowlkes; Eric Johnsen; Charles Cain; Zhen Xu
Journal:  Ultrasound Med Biol       Date:  2015-03-09       Impact factor: 2.998

8.  Soft-Tissue Aberration Correction for Histotripsy.

Authors:  Jonathan J Macoskey; Timothy L Hall; Jonathan R Sukovich; Sang Won Choi; Kimberly Ives; Eric Johnsen; Charles A Cain; Zhen Xu
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2018-10-01       Impact factor: 2.725

9.  The influence of medium elasticity on the prediction of histotripsy-induced bubble expansion and erythrocyte viability.

Authors:  Kenneth B Bader
Journal:  Phys Med Biol       Date:  2018-05-02       Impact factor: 3.609

10.  Stereotactic Transcranial Focused Ultrasound Targeting System for Murine Brain Models.

Authors:  Sang Won Choi; Tyler I Gerhardson; Sarah E Duclos; Rachel K Surowiec; Ulrich M Scheven; Stefanie Galban; Fred T Lee; Joan M Greve; James M Balter; Timothy L Hall; Zhen Xu
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2020-12-23       Impact factor: 2.725

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