• DocumentCode
    591186
  • Title

    An ultrasound-based imaging method for visualizing patterns of action potential propagation in the heart

  • Author

    Otani, Niels F. ; Singh, Rajdeep ; Gilmour, Robert F.

  • Author_Institution
    Cornell Univ., Ithaca, NY, USA
  • fYear
    2012
  • fDate
    9-12 Sept. 2012
  • Firstpage
    149
  • Lastpage
    152
  • Abstract
    An understanding of the patterns and characteristics of action potential propagation in the heart is crucial for the development of advanced methods for treating dangerous and lethal cardiac rhythm disorders. Unfortunately, visualization of these action potentials with existing methods, especially deep with the walls of the heart, has been problematic. We have been developing a new method whereby these patterns can be seen. The method calculates the locations of action potentials from the deformations they produce, as recorded in ultrasound images. An important step in developing an appropriate algorithm is to determine whether there exists a local function of the mechanical strains that marks the locations of the action potentials, or whether a fully three-dimensional inverse calculation must be performed. To study this question, we have examined the properties of deformations produced by action potentials propagating in: a 1-D fiber, an axisymmetric shell model of the heart and a 3-D model of a cube of cardiac tissue. The models and theory combine to show that incremental strain is a good marker of the action potentials wavefronts when the system and wave are essentially one-dimensional in nature. In contrast, higher dimensional structure in either the wave or the medium in which it travels produces an incremental strain field that extends out away from the wave. We conclude that determination of action potential locations will likely require a more complex calculation when wave propagation is not fundamentally one-dimensional.
  • Keywords
    bioelectric potentials; biological tissues; biomechanics; biomedical ultrasonics; cardiology; deformation; 1D fiber model; 3D model; action potential propagation; axisymmetric shell model; cardiac tissue; deformations; heart; incremental strain field; lethal cardiac rhythm disorders; mechanical strains; three-dimensional inverse calculation; ultrasound-based imaging method; wave propagation; Computational modeling; Equations; Heart; Mathematical model; Strain; Stress; Ultrasonic imaging;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Computing in Cardiology (CinC), 2012
  • Conference_Location
    Krakow
  • ISSN
    2325-8861
  • Print_ISBN
    978-1-4673-2076-4
  • Type

    conf

  • Filename
    6420352