Literature DB >> 22280615

Modeling of thermal effects in antivascular ultrasound therapy.

Benjamin J Levenback1, Chandra M Sehgal, Andrew K W Wood.   

Abstract

Antivascular ultrasound consisting of low-intensity sonication in the presence of circulating microbubbles of an ultrasound contrast agent has been demonstrated to disrupt blood flow in solid cancers. In this study a mathematical framework is described for the microbubble-induced heating that occurs during antivascular ultrasound. Biological tissues are modeled as a continuum of microbubble-filled vasculature, cells, and interstitial fluids with compressibility equal to the sum of the compressibility of each component. The mathematical simulations show that the absorption of ultrasound waves by viscous damping of the microbubble oscillations induced significant local heating of the tissue vasculature. The extent and the rate of temperature increase not only depends on the properties of the microbubbles and the sonication parameters but is also influenced markedly by the blood flow. Slow flow conditions lead to higher tissue temperatures due to a stronger interaction between microbubbles and ultrasound and reduced heat dissipation. Because tumors have slower blood flow than healthy tissue, the microbubble-induced ultrasound antivascular therapy is likely to affect cancerous tissue more extensively than healthy tissue, providing a way to selectively target the vasculature of cancers.
© 2012 Acoustical Society of America.

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Year:  2012        PMID: 22280615      PMCID: PMC3283906          DOI: 10.1121/1.3662048

Source DB:  PubMed          Journal:  J Acoust Soc Am        ISSN: 0001-4966            Impact factor:   1.840


  18 in total

1.  Oscillations of polymeric microbubbles: effect of the encapsulating shell

Authors: 
Journal:  J Acoust Soc Am       Date:  2000-04       Impact factor: 1.840

2.  Measurements of bubble-enhanced heating from focused, MHz-frequency ultrasound in a tissue-mimicking material.

Authors:  R G Holt; R A Roy
Journal:  Ultrasound Med Biol       Date:  2001-10       Impact factor: 2.998

3.  Bulk ablation of soft tissue with intense ultrasound: modeling and experiments.

Authors:  T Douglas Mast; Inder Raj S Makin; Waseem Faidi; Megan M Runk; Peter G Barthe; Michael H Slayton
Journal:  J Acoust Soc Am       Date:  2005-10       Impact factor: 1.840

4.  Enhanced heat deposition using ultrasound contrast agent--modeling and experimental observations.

Authors:  Daniel Razansky; Pinchas D Einziger; Dan R Adam
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2006-01       Impact factor: 2.725

Review 5.  Comprehensive compilation of empirical ultrasonic properties of mammalian tissues.

Authors:  S A Goss; R L Johnston; F Dunn
Journal:  J Acoust Soc Am       Date:  1978-08       Impact factor: 1.840

6.  Ultrasonic absorption and attenuation in mammalian tissues.

Authors:  S A Goss; L A Frizzell; F Dunn
Journal:  Ultrasound Med Biol       Date:  1979       Impact factor: 2.998

7.  Temperature change near microbubbles within a capillary network during focused ultrasound.

Authors:  Alexander R Klotz; Liis Lindvere; Bojana Stefanovic; Kullervo Hynynen
Journal:  Phys Med Biol       Date:  2010-02-17       Impact factor: 3.609

8.  The disruption of murine tumor neovasculature by low-intensity ultrasound-comparison between 1- and 3-MHz sonication frequencies.

Authors:  Andrew K W Wood; Ralph M Bunte; Heather E Price; Margaret S Deitz; Jeff H Tsai; William M-F Lee; Chandra M Sehgal
Journal:  Acad Radiol       Date:  2008-09       Impact factor: 3.173

9.  The antivascular action of physiotherapy ultrasound on a murine tumor: role of a microbubble contrast agent.

Authors:  Andrew K W Wood; Ralph M Bunte; Jennie D Cohen; Jeff H Tsai; William M-F Lee; Chandra M Sehgal
Journal:  Ultrasound Med Biol       Date:  2007-08-27       Impact factor: 2.998

10.  Acute increases in murine tumor echogenicity after antivascular ultrasound therapy: a pilot preclinical study.

Authors:  Andrew K W Wood; Ralph M Bunte; Susan M Schultz; Chandra M Sehgal
Journal:  J Ultrasound Med       Date:  2009-06       Impact factor: 2.153

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  10 in total

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Authors:  Andrew K W Wood; Chandra M Sehgal
Journal:  Ultrasound Med Biol       Date:  2015-04       Impact factor: 2.998

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5.  Low-frequency ultrasound-mediated microvessel disruption combined with docetaxel to treat prostate carcinoma xenografts in nude mice: A novel type of chemoembolization.

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Journal:  Oncol Lett       Date:  2016-06-13       Impact factor: 2.967

6.  Radiofrequency treatment alters cancer cell phenotype.

Authors:  Matthew J Ware; Sophia Tinger; Kevin L Colbert; Stuart J Corr; Paul Rees; Nadezhda Koshkina; Steven Curley; H D Summers; Biana Godin
Journal:  Sci Rep       Date:  2015-07-13       Impact factor: 4.379

7.  Pancreatic adenocarcinoma response to chemotherapy enhanced with non-invasive radio frequency evaluated via an integrated experimental/computational approach.

Authors:  Matthew J Ware; Louis T Curtis; Min Wu; Jason C Ho; Stuart J Corr; Steven A Curley; Biana Godin; Hermann B Frieboes
Journal:  Sci Rep       Date:  2017-06-13       Impact factor: 4.379

8.  Microbubble-enhanced ultrasound for the antivascular treatment and monitoring of hepatocellular carcinoma.

Authors:  Julia C D'Souza; Laith R Sultan; Stephen J Hunt; Terence P Gade; Mrigendra B Karmacharya; Susan M Schultz; Angela K Brice; Andrew K W Wood; Chandra M Sehgal
Journal:  Nanotheranostics       Date:  2019-10-01

9.  Subsequent Ultrasound Vascular Targeting Therapy of Hepatocellular Carcinoma Improves the Treatment Efficacy.

Authors:  Laith R Sultan; Mrigendra B Karmacharya; Stephen J Hunt; Andrew K W Wood; Chandra M Sehgal
Journal:  Biology (Basel)       Date:  2021-01-22

Review 10.  Nano Meets Micro-Translational Nanotechnology in Medicine: Nano-Based Applications for Early Tumor Detection and Therapy.

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Journal:  Nanomaterials (Basel)       Date:  2020-02-22       Impact factor: 5.076

  10 in total

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