DocumentCode :
74731
Title :
Histotripsy beyond the intrinsic cavitation threshold using very short ultrasound pulses: microtripsy
Author :
Kuang-Wei Lin ; Yohan Kim ; Maxwell, Andrew D. ; Tzu-Yin Wang ; Hall, Timothy ; Zhen Xu ; Fowlkes, J. Brian ; Cain, Charles
Author_Institution :
Dept. of Biomed. Eng., Univ. of Michigan, Ann Arbor, MI, USA
Volume :
61
Issue :
2
fYear :
2014
fDate :
Feb-14
Firstpage :
251
Lastpage :
265
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 lesionproducing bubble cloud generation depends on the pressurerelease scattering of very high peak positive shock fronts from previously initiated, sparsely distributed bubbles (the shockscattering 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.
Keywords :
acoustic wave scattering; biological tissues; biomedical transducers; blood; bubbles; cavitation; cellular biophysics; phantoms; shock wave effects; ultrasonic therapy; canine tissues; dense energetic bubble cloud generation; focal region estimation; frequency 500 kHz; high-pressure ultrasound pulses; histotripsy treatments; histotripsy-induced lesions; intrinsic cavitation threshold measurement; microtripsy; peak negative pressure; pressure 24.5 MPa to 80.7 MPa; pulse repetition frequency; red blood cell phantoms; shock front scattering mechanism; thirty two-element PZT-8 therapy transducer; tissue fractionation; very short ultrasound pulses; Acoustics; Electric shock; Lesions; Medical treatment; Phantoms; Transducers; Ultrasonic imaging;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2014.6722611
Filename :
6722611
Link To Document :
بازگشت