• DocumentCode
    1408559
  • Title

    Transcranial Ultrasonic Therapy Based on Time Reversal of Acoustically Induced Cavitation Bubble Signature

  • Author

    Gateau, Jerome ; Marsac, Laurent ; Pernot, Mathieu ; Aubry, Jean-Francois ; Tanter, Mickaël ; Fink, Mathias

  • Author_Institution
    Langevin Inst., Univ. Paris VII, Paris, France
  • Volume
    57
  • Issue
    1
  • fYear
    2010
  • Firstpage
    134
  • Lastpage
    144
  • Abstract
    Brain treatment through the skull with high-intensity focused ultrasound can be achieved with multichannel arrays and adaptive focusing techniques such as time reversal. This method requires a reference signal to be either emitted by a real source embedded in brain tissues or computed from a virtual source, using the acoustic properties of the skull derived from computed tomography images. This noninvasive computational method focuses with precision, but suffers from modeling and repositioning errors that reduce the accessible acoustic pressure at the focus in comparison with fully experimental time reversal using an implanted hydrophone. In this paper, this simulation-based targeting has been used experimentally as a first step for focusing through an ex vivo human skull at a single location. It has enabled the creation of a cavitation bubble at focus that spontaneously emitted an ultrasonic wave received by the array. This active source signal has allowed 97 ?? 1.1% of the reference pressure (hydrophone-based) to be restored at the geometrical focus. To target points around the focus with an optimal pressure level, conventional electronic steering from the initial focus has been combined with bubble generation. Thanks to step-by-step bubble generation, the electronic steering capabilities of the array through the skull were improved.
  • Keywords
    acoustic signal processing; array signal processing; beam steering; biomedical transducers; biomedical ultrasonics; brain; bubbles; cavitation; medical signal processing; ultrasonic therapy; ultrasonic transducer arrays; acoustically induced cavitation bubble signature; adaptive focusing techniques; brain treatment; bubble generation; cavitation bubble creation; cavitation bubble signature time reversal; conventional electronic steering; high intensity focused ultrasound; multichannel arrays; noninvasive computational method; real source reference signal; simulation based targeting; skull acoustic properties; transcranial ultrasonic therapy; ultrasonic wave spontaneous emission; virtual source reference signal; Acoustic emission; Adaptive arrays; Computational modeling; Computed tomography; Embedded computing; Focusing; Medical treatment; Skull; Sonar equipment; Ultrasonic imaging; Acoustic beam steering; acoustic cavitation; adaptive arrays; transcranial brain therapy; Algorithms; Computer Simulation; Humans; Microbubbles; Phantoms, Imaging; Pressure; Signal Processing, Computer-Assisted; Skull; Subtraction Technique; Ultrasonic Therapy; Ultrasonography, Doppler, Transcranial;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2009.2031816
  • Filename
    5247101