An Anatomical Model of the Cerebral Vasculature and the Autoregulation of Cerebral Blood Flow

被引:0
|
作者
Lucas, C. [1 ]
Payne, S. J. [1 ]
机构
[1] Univ Oxford, Dept Engn Sci, Oxford, England
关键词
vasculature; geometry; oxygen concentration; ATP;
D O I
暂无
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
With the advent of detailed brain imaging techniques, considerable information can be gathered about the anatomy and physiology of the human cerebral vasculature. This enables us to move beyond simple lumped parameter models of the vasculature towards more detailed spatial models: this is critical in a number of brain diseases, such as stroke, where the brain's response is strongly dependent upon the local vascular properties. However, this is not yet understood within the context of a whole brain model, since the local response is influenced by both local and global processes. Here we describe a method of determining geometry in a branching cerebral vascular network. We use available pressure and velocity data to optimize the geometry (diameter and length) in order to fulfill the criterion that flow is conserved in a bifurcating network. The geometry depends only on the capillary diameter and the number of generations of vessels. We then use the pressure and flow relationship set out by Boas [1] along with Poiseuille's law to determine flow and pressure at every point in the system. Finally, data for oxygen concentration from Vovenko [3] is used to establish the correct parameter values to use in the mass transport equation in order to calculate the oxygen concentration in the model. The established geometry can be used as a basis for developing an improved model of the cerebral vasculature which incorporates autoregulation. This paper uses Arciero's proposition [4] that a signal is conducted upstream to influence vessels. We will also be able to investigate alternative network sizes and the effect of changing part of the geometry, or changing flow on the rest of the network.
引用
收藏
页码:446 / 449
页数:4
相关论文
共 50 条
  • [21] AUTOREGULATION OF CEREBRAL BLOOD FLOW - INFLUENCE OF ARTERIAL BLOOD PRESSURE ON BLOOD FLOW THROUGH CEREBRAL CORTEX
    HARPER, AM
    JOURNAL OF NEUROLOGY NEUROSURGERY AND PSYCHIATRY, 1966, 29 (05): : 398 - +
  • [22] Modelling cerebral blood flow autoregulation in humans
    Panerai, RB
    PROCEEDINGS OF THE 23RD ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOLS 1-4: BUILDING NEW BRIDGES AT THE FRONTIERS OF ENGINEERING AND MEDICINE, 2001, 23 : 240 - 243
  • [23] CEREBRAL BLOOD FLOW AUTOREGULATION AND GRADED HYPERCAPNIA
    RAICHLE, ME
    STONE, HL
    NEUROLOGY, 1971, 21 (04) : 401 - &
  • [24] Effects of intraoperative hyperoxia on cerebral blood flow and dynamic cerebral autoregulation
    van den Dool, Rokus E. C.
    Batelaan, Lariza
    Veelo, Denise P.
    Schenk, Jimmy
    Hollmann, Markus W.
    Vlaar, Alexander J. P.
    Weiland, Nicolaas H. Sperna
    Immink, Rogier V.
    CANADIAN JOURNAL OF ANESTHESIA-JOURNAL CANADIEN D ANESTHESIE, 2025, : 511 - 513
  • [25] Oxygen administration, cerebral blood flow velocity, and dynamic cerebral autoregulation
    Nishimura, Naoko
    Iwasaki, Ken-Ich
    Ogawa, Yojiro
    Shibata, Shigeki
    AVIATION SPACE AND ENVIRONMENTAL MEDICINE, 2007, 78 (12): : 1121 - 1127
  • [26] Development of a cerebral autoregulation model for use with clinical blood flow measurements
    Schley, D
    Craine, RE
    Birch, AA
    MATHEMATICAL AND COMPUTER MODELLING OF DYNAMICAL SYSTEMS, 2003, 9 (04) : 367 - 386
  • [27] Assessment of cerebral autoregulation from spontaneous blood pressure and cerebral blood flow fluctuations
    Hu, Kun
    Lo, Men-Tzung
    Peng, Chung-Kang
    Zhao, Peng
    LaRose, Sarah
    Novak, Peter
    Selim, Magdy
    Lipsitz, Lewis
    Novak, Vera
    STROKE, 2008, 39 (02) : 714 - 714
  • [28] EFFECTS OF BETA-ADRENERGIC BLOCKADE ON CEREBRAL BLOOD FLOW AUTOREGULATION - METABOLIC MECHANISM OF CEREBRAL AUTOREGULATION
    FUJISHIMA, M
    JAPANESE CIRCULATION JOURNAL, 1971, 35 (09): : 1049 - +
  • [29] Cerebral blood flow and dynamic cerebral autoregulation during ethanol intoxication and hypercapnia
    Blaha, M
    Aaslid, R
    Douville, CM
    Correra, R
    Newell, DW
    JOURNAL OF CLINICAL NEUROSCIENCE, 2003, 10 (02) : 195 - 198
  • [30] Effects of propofol on cerebral blood flow, metabolism, and cerebral autoregulation in the anesthetized pig
    Lagerkranser, M
    Stange, K
    Sollevi, A
    JOURNAL OF NEUROSURGICAL ANESTHESIOLOGY, 1997, 9 (02) : 188 - 193