3D network model of NO transport in tissue

被引:0
|
作者
Xuewen Chen
Donald G. Buerk
Kenneth A. Barbee
Patrick Kirby
Dov Jaron
机构
[1] Drexel University,School of Biomedical Engineering, Science, and Health Systems
[2] Michigan State University,Department of Plant Biology
关键词
Mass transport; Mathematical modeling; Microcirculation; Nitric oxide; Wall shear stress;
D O I
暂无
中图分类号
学科分类号
摘要
We developed a mathematical model to simulate shear stress-dependent nitric oxide (NO) production and transport in a 3D microcirculatory network based on published data. The model consists of a 100 μm × 500 μm × 75 μm rectangular volume of tissue containing two arteriole-branching trees, and nine capillaries surrounding the vessels. Computed distributions for NO in blood, vascular walls, and surrounding tissue were affected by hematocrit (Hct) and wall shear stress (WSS) in the network. The model demonstrates that variations in the red blood cell (RBC) distribution and WSS in a branching network can have differential effects on computed NO concentrations due to NO consumption by RBCs and WSS-dependent changes in NO production. The model predicts heterogeneous distributions of WSS in the network. Vessel branches with unequal blood flow rates gave rise to a range of WSS values and therefore NO production rates. Despite increased NO production in a branch with higher blood flow and WSS, vascular wall NO was predicted to be lower due to greater NO consumption in blood, since the microvascular Hct increased with redistribution of RBCs at the vessel bifurcation. Within other regions, low WSS was combined with decreased NO consumption to enhance the NO concentration.
引用
收藏
相关论文
共 50 条
  • [21] 3D model system for hydrodynamics, eutrophication and nutrient transport
    Rasmussen, EK
    Hansen, IS
    Erichsen, AC
    Muhlenstein, D
    Dorge, J
    ENVIRONMENTAL COASTAL REGIONS III, 2000, 5 : 291 - 300
  • [22] A 3D model for ion beam formation and transport simulation
    Qiang, J.
    Todd, D.
    Leitner, D.
    COMPUTER PHYSICS COMMUNICATIONS, 2006, 175 (06) : 416 - 423
  • [23] Three dimentional (3D) reconstructed psoriatic tissue model
    Ayehunie, S.
    Hedin, C.
    Landry, T.
    Wang, A.
    Spratt, M.
    Clark, R.
    Kupper, T.
    Klausner, M.
    JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2011, 131 : S109 - S109
  • [24] MicroRNA transfection of 3D lung tissue model is possible
    Nowakowska, Joanna
    Langwinski, Wojciech
    Silva, Iran Augusto Neves
    Gvazava, Nika
    Szczepankiewicz, Aleksandra
    Wagner, Darcy E.
    EUROPEAN RESPIRATORY JOURNAL, 2023, 62
  • [25] Development of a 3D bone marrow adipose tissue model
    Fairfield, Heather
    Falank, Carolyne
    Farrell, Mariah
    Vary, Calvin
    Boucher, Joshua M.
    Driscoll, Heather
    Liaw, Lucy
    Rosen, Clifford J.
    Reagan, Michaela R.
    BONE, 2019, 118 : 77 - 88
  • [26] Physiological 3D tissue model of the airway wall and mucosa
    Melanie M Choe
    Alice A Tomei
    Melody A Swartz
    Nature Protocols, 2006, 1 : 357 - 362
  • [27] Improved Tissue Equivalent Material for 3D Printing Model
    Jiao, W.
    Zhang, F.
    Qiu, J.
    Zhao, H.
    MEDICAL PHYSICS, 2022, 49 (06) : E772 - E772
  • [28] Development of a 3D reconstructed psoriatic tissue model.
    Ayehunie, S.
    Jones, D.
    Child, M.
    Clark, R.
    Kupper, T.
    Klausner, M.
    JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2010, 130 : S39 - S39
  • [29] Development of an 3D ex vivo model of bone tissue
    Gamblin, A. L.
    Renaud, A.
    Amimaud, J.
    Hulin, P.
    Trichet, V.
    Heymann, D.
    Layrolle, P.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2012, 6 : 350 - 350
  • [30] 3D primary human kidney tissue model for nephrotoxicity
    Finelli, J.
    Kaluzhny, Y.
    Klausner, M.
    Armento, A.
    Ayehunie, S.
    Karetsky, V.
    TOXICOLOGY LETTERS, 2024, 399 : S117 - S118