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Effects of Tissue Mechanical Properties on Susceptibility to Histotripsy-induced Tissue Damage

Overview
Journal Phys Med Biol
Publisher IOP Publishing
Date 2013 Dec 20
PMID 24351722
Citations 85
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Abstract

Histotripsy is a non-invasive tissue ablation method capable of fractionating tissue by controlling acoustic cavitation. To determine the fractionation susceptibility of various tissues, we investigated histotripsy-induced damage on tissue phantoms and ex vivo tissues with different mechanical strengths. A histotripsy bubble cloud was formed at tissue phantom surfaces using 5-cycle long ultrasound pulses with peak negative pressure of 18 MPa and PRFs of 10, 100, and 1000 Hz. Results showed significantly smaller lesions were generated in tissue phantoms of higher mechanical strength. Histotripsy was also applied to 43 different ex vivo porcine tissues with a wide range of mechanical properties. Gross morphology demonstrated stronger tissues with higher ultimate stress, higher density, and lower water content were more resistant to histotripsy damage in comparison to weaker tissues. Based on these results, a self-limiting vessel-sparing treatment strategy was developed in an attempt to preserve major vessels while fractionating the surrounding target tissue. This strategy was tested in porcine liver in vivo. After treatment, major hepatic blood vessels and bile ducts remained intact within a completely fractionated liver volume. These results identify varying susceptibilities of tissues to histotripsy therapy and provide a rational basis to optimize histotripsy parameters for treatment of specific tissues.

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References
1.
Kim Y, Fifer C, Gelehrter S, Owens G, Berman D, Vlaisavljevich E . Developmental impact and lesion maturation of histotripsy-mediated non-invasive tissue ablation in a fetal sheep model. Ultrasound Med Biol. 2013; 39(6):1047-55. DOI: 10.1016/j.ultrasmedbio.2012.12.014. View

2.
WOODARD H, White D . The composition of body tissues. Br J Radiol. 1986; 59(708):1209-18. DOI: 10.1259/0007-1285-59-708-1209. View

3.
Roberts W, Hall T, Ives K, Wolf Jr J, Fowlkes J, Cain C . Pulsed cavitational ultrasound: a noninvasive technology for controlled tissue ablation (histotripsy) in the rabbit kidney. J Urol. 2006; 175(2):734-8. DOI: 10.1016/S0022-5347(05)00141-2. View

4.
Xu Z, Fowlkes J, Rothman E, Levin A, Cain C . Controlled ultrasound tissue erosion: the role of dynamic interaction between insonation and microbubble activity. J Acoust Soc Am. 2005; 117(1):424-35. PMC: 2677096. DOI: 10.1121/1.1828551. View

5.
Marrero J, Pelletier S . Hepatocellular carcinoma. Clin Liver Dis. 2006; 10(2):339-51, ix. DOI: 10.1016/j.cld.2006.05.012. View