Title :
Transcranial Assessment and Visualization of Acoustic Cavitation: Modeling and Experimental Validation
Author :
Arvanitis, Costas D. ; Clement, Gregory T. ; McDannold, Nathan
Author_Institution :
Dept. of Radiol., Med. Sch., Harvard Univ., Boston, MA, USA
Abstract :
The interaction of ultrasonically-controlled microbubble oscillations with tissues and biological media has been shown to induce a wide range of bioeffects that may have significant impact on therapy and diagnosis of brain diseases and disorders. However, the inherently non-linear microbubble oscillations combined with the micrometer and microsecond scales involved in these interactions and the limited methods to assess and visualize them transcranially hinder both their optimal use and translation to the clinics. To overcome these challenges, we present a framework that combines numerical simulations with multimodality imaging to assess and visualize the microbubble oscillations transcranially. In the present work, microbubble oscillations were studied with an integrated US and MR imaging guided clinical FUS system. A high-resolution brain CT scan was also co-registered to the US and MR images and the derived acoustic properties were used as inputs to two- and three-dimensional Finite Difference Time Domain simulations that matched the experimental conditions and geometry. Synthetic point sources by either a Gaussian function or the output of a microbubble dynamics model were numerically excited and propagated through the skull towards a virtual US imaging array. Using passive acoustic mapping (PAM) that was refined to incorporate variable speed of sound, we were able to correct the aberrations introduced by the skull and substantially improve the PAM resolution. The good agreement between the simulations incorporating microbubble emissions and experimentally-determined PAMs suggest that this integrated approach can provide a clinically-relevant framework and more control over this nonlinear and dynamic process.
Keywords :
Gaussian processes; biomedical MRI; biomedical ultrasonics; brain; bubbles; cavitation; computerised tomography; finite difference time-domain analysis; image registration; image resolution; medical image processing; ultrasonic velocity; Gaussian function; MR imaging guided clinical focused ultrasound system; acoustic cavitation visualization; acoustic properties; biological media; biological tissues; brain diseases; brain disorders; computed tomography; high-resolution brain CT scan; integrated US imaging; microbubble dynamics model; microbubble emissions; microbubble oscillations; passive acoustic mapping resolution; sound speed; synthetic point sources; three-dimensional finite difference time domain simulations; transcranial assessment; two-dimensional finite difference time domain simulations; virtual US imaging array; Acoustics; Arrays; Computed tomography; Magnetic resonance imaging; Numerical models; Oscillators; Acoustic cavitation; focused ultrasound; image guided therapy; multimodality imaging; numerical modeling;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2014.2383835