Published November 2019 | Version public
Journal Article

Modeling tissue-selective cavitation damage

  • 1. ROR icon University of Michigan–Ann Arbor
  • 2. ROR icon Virginia Tech
  • 3. ROR icon California Institute of Technology
  • 4. ROR icon University of Wisconsin–Madison
  • 5. ROR icon Brown University

Abstract

The destructive growth and collapse of cavitation bubbles are used for therapeutic purposes in focused ultrasound procedures and can contribute to tissue damage in traumatic injuries. Histotripsy is a focused ultrasound procedure that relies on controlled cavitation to homogenize soft tissue. Experimental studies of histotripsy cavitation have shown that the extent of ablation in different tissues depends on tissue mechanical properties and waveform parameters. Variable tissue susceptibility to the large stresses, strains, and strain rates developed by cavitation bubbles has been suggested as a basis for localized liver tumor treatments that spare large vessels and bile ducts. However, field quantities developed within microns of cavitation bubbles are too localized and transient to measure in experiments. Previous numerical studies have attempted to circumvent this challenge but made limited use of realistic tissue property data. In this study, numerical simulations are used to calculate stress, strain, and strain rate fields produced by bubble oscillation under histotripsy forcing in a variety of tissues with literature-sourced viscoelastic and acoustic properties. Strain field calculations are then used to predict a theoretical damage radius using tissue ultimate strain data. Simulation results support the hypothesis that differential tissue responses could be used to design tissue--selective treatments. Results agree with studies correlating tissue ultimate fractional strain with resistance to histotripsy ablation and are also consistent with experiments demonstrating smaller lesion size under exposure to higher frequency waveforms. Methods presented in this study provide an approach for modeling tissue--selective cavitation damage in general.

Additional Information

© 2019 Institute of Physics and Engineering in Medicine. Received 25 July 2019; Revised 8 October 2019; Accepted 22 October 2019; Accepted Manuscript online 22 October 2019.

Additional details

Identifiers

Eprint ID
99499
Resolver ID
CaltechAUTHORS:20191028-150100328

Funding

Office of Naval Research (ONR)
N00014-18-1-2625
NIH Predoctoral Fellowship
5T32GM007863-38
NIH
R01-CA-211217

Dates

Created
2019-10-28
Created from EPrint's datestamp field
Updated
2022-07-12
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