• DocumentCode
    1298733
  • Title

    In vivo quantification of a homogeneous brain deformation model for updating preoperative images during surgery

  • Author

    Miga, Michael I. ; Paulsen, Keith D. ; Hoopes, P. Jack ; Kennedy, Francis E., Jr. ; Hartov, Alex ; Roberts, David W.

  • Author_Institution
    Thayer Sch. of Eng., Dartmouth Coll., Hanover, NH, USA
  • Volume
    47
  • Issue
    2
  • fYear
    2000
  • Firstpage
    266
  • Lastpage
    273
  • Abstract
    Clinicians using image-guidance for neurosurgical procedures have recently recognized that intraoperative deformation from surgical loading can compromise the accuracy of patient registration in the operating room. While whole brain intraoperative imaging is conceptually appealing it presents significant practical limitations. Alternatively, a promising approach may be to combine incomplete intraoperatively acquired data with a computational model of brain deformation to update high resolution preoperative images during surgery. The success of such an approach is critically dependent on identifying a valid model of brain deformation physics. Towards this end, the authors evaluate a three-dimensional finite element consolidation theory model for predicting brain deformation in vivo through a series of controlled repeat-experiments. This database is used to construct an interstitial pressure boundary condition calibration curve which is prospectively tested in a fourth validation experiment. The computational model is found to recover 75%-85% of brain motion occurring under loads comparable to clinical conditions. Additionally, the updating of preoperative images using the model calculations is presented and demonstrates that model-updated image-guided neurosurgery may be a viable option for addressing registration errors related to intraoperative tissue motion.
  • Keywords
    biomechanics; brain models; calibration; finite element analysis; image registration; medical image processing; surgery; brain deformation physics; brain shift; computational model; controlled repeat-experiments; high resolution preoperative images; incomplete intraoperatively acquired data; interstitial pressure boundary condition calibration curve; intraoperative deformation; intraoperative tissue motion; operating room; patient registration accuracy; registration errors; surgical loading; three-dimensional finite element consolidation theory model; Brain modeling; Computational modeling; Deformable models; High-resolution imaging; Image recognition; Image resolution; In vivo; Neurosurgery; Physics; Surgery; Animals; Brain; Calibration; Computer Simulation; Image Processing, Computer-Assisted; Magnetic Resonance Imaging; Models, Neurological; Monitoring, Intraoperative; Neurosurgical Procedures; Preoperative Care; Reproducibility of Results; Swine; Tomography, X-Ray Computed;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.821778
  • Filename
    821778