Elastic Deformation of Soft Tissue-Mimicking Materials Using a Single Microbubble and Acoustic Radiation Force

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Abstract

Mechanical effects of microbubbles on tissues are central to many emerging ultrasound applications. Here, we investigated the acoustic radiation force a microbubble exerts on tissue at clinically relevant therapeutic ultrasound parameters. Individual microbubbles administered into a wall-less hydrogel channel (diameter: 25–100 µm, Young's modulus: 2–8.7 kPa) were exposed to an acoustic pulse (centre frequency: 1 MHz, pulse length: 10 ms, peak-rarefactional pressures: 0.6–1.0 MPa). Using high-speed microscopy, each microbubble was tracked as it pushed against the hydrogel wall. We found that a single microbubble can transiently deform a soft tissue-mimicking material by several micrometres, producing tissue loading–unloading curves that were similar to those produced using other indentation-based methods. Indentation depths were linked to gel stiffness. Using a mathematical model fitted to the deformation curves, we estimated the radiation force on each bubble (typically tens of nanonewtons) and the viscosity of the gels. These results provide insight into the forces exerted on tissues during ultrasound therapy and indicate a potential source of bio-effects.

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Keywords

Microbubbles, Bjerknes force, Drug delivery, Cavitation, Acoustic radiation force, Ultrasound contrast agents, Cavitation, Bjerknes force, Microbubbles, 610, 600, 1103 Clinical Sciences, Original Contribution, Acoustics, Ultrasound contrast agents, Models, Biological, Acoustic radiation force, Elastic Modulus, Drug delivery, Materials Testing, Ultrasonography

Fields of Science

01 natural sciences, 0103 physical sciences

Citation

Bezer, J. H., Koruk, H., Rowlands, C. J., & Choi, J. J. (January 01, 2020). Elastic Deformation of Soft Tissue-Mimicking Materials Using a Single Microbubble and Acoustic Radiation Force. Ultrasound in Medicine & Biology.

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OpenCitations Citation Count
19

Volume

46

Issue

12

Start Page

1

End Page

3338
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