• DocumentCode
    1119376
  • Title

    A New Lumped-Parameter Model of Cerebrospinal Hydrodynamics During the Cardiac Cycle in Healthy Volunteers

  • Author

    Ambarki, Khalid ; Baledent, Olivier ; Kongolo, Guy ; Bouzerar, Robert ; Fall, Sidy ; Meyer, Marc-Etienne

  • Author_Institution
    Dept. of Imaging & Biophys., Jules Verne Univ. of Picardie, Amiens
  • Volume
    54
  • Issue
    3
  • fYear
    2007
  • fDate
    3/1/2007 12:00:00 AM
  • Firstpage
    483
  • Lastpage
    491
  • Abstract
    Our knowledge of cerebrospinal fluid (CSF) hydrodynamics has been considerably improved with the recent introduction of phase-contrast magnetic resonance imaging (phase-contrast MRI), which can provide CSF and blood flow measurements throughout the cardiac cycle. Key temporal and amplitude parameters can be calculated at different sites to elucidate the role played by the various CSF compartments during vascular brain expansion. Most of the models reported in the literature do not take into account CSF oscillation during the cardiac cycle and its kinetic energy impact on the brain. We propose a new lumped-parameter compartmental model of CSF and blood flows in healthy subjects during the cardiac cycle. The system was divided into five submodels representing arterial blood, venous blood, ventricular CSF, cranial subarachnoid space, and spinal subarachnoid space. These submodels are connected by resistances and compliances. The model developed was used to reproduce certain functional characteristics observed in seven healthy volunteers, such as the distribution (amplitude and phase shift) of arterial, venous, and CSF flows. The results show a good agreement between measured and simulated intracranial CSF and blood flows
  • Keywords
    biomedical MRI; brain; cardiology; fluid oscillations; haemodynamics; neurophysiology; physiological models; CSF oscillation; MRI; arterial blood; blood flows; brain; cardiac cycle; cerebrospinal hydrodynamics; compliance; cranial subarachnoid space; flow distribution; lumped-parameter model; phase-contrast magnetic resonance imaging; spinal subarachnoid space; vascular brain expansion; venous blood; Blood flow; Brain modeling; Cranial; Electrical resistance measurement; Fluid flow measurement; Hydrodynamics; Kinetic energy; Magnetic liquids; Magnetic resonance imaging; Phase measurement; Blood flow; CSF flow; compliance; conductance; hydrodynamics; phase-contrast MRI; Adult; Biological Clocks; Brain; Cerebrospinal Fluid; Cerebrospinal Fluid Pressure; Cerebrovascular Circulation; Computer Simulation; Heart; Humans; Male; Models, Biological; Reference Values;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2006.890492
  • Filename
    4100820