Mathematical modeling of atherosclerotic plaque destabilization: Role of neovascularization and intraplaque hemorrhage

被引:22
|
作者
Guo, Muyi [1 ]
Cai, Yan [1 ]
Yao, Xinke [1 ]
Li, Zhiyong [1 ,2 ]
机构
[1] Southeast Univ, Sch Biol Sci & Med Engn, Nanjing 210096, Jiangsu, Peoples R China
[2] Queensland Univ Technol, Sch Chem Phys & Mech Engn, Brisbane, Qld 4001, Australia
基金
中国国家自然科学基金;
关键词
Numerical model of vulnerable atherosclerosis; Intraplaque angiogenesis and hemorrhage; Microcirculation inside the plaque lesion; Plaque microenvironmental dynamics; TUMOR-INDUCED ANGIOGENESIS; OPTICAL COHERENCE TOMOGRAPHY; CAROTID-ARTERY; VASA-VASORUM; BLOOD-FLOW; CORONARY ATHEROSCLEROSIS; ANTIANGIOGENIC THERAPY; VASCULAR NETWORKS; IN-VIVO; VULNERABILITY;
D O I
10.1016/j.jtbi.2018.04.031
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Observational studies have identified angiogenesis from the adventitial vasa vasorum and intraplaque hemorrhage (IPH) as critical factors in atherosclerotic plaque progression and destabilization. Here we propose a mathematical model incorporating intraplaque neovascularization and hemodynamic calculation with plaque destabilization for the quantitative evaluation of the role of neoangiogenesis and IPH in the vulnerable atherosclerotic plaque formation. An angiogenic microvasculature is generated by two-dimensional nine-point discretization of endothelial cell proliferation and migration from the vasa vasorum. Three key cells (endothelial cells, smooth muscle cells and macrophages) and three key chemicals (vascular endothelial growth factors, extracellular matrix and matrix metalloproteinase) are involved in the plaque progression model, and described by the reaction-diffusion partial differential equations. The hemodynamic calculation of the microcirculation on the generated microvessel network is carried out by coupling the intravascular, interstitial and transvascular flow. The plasma concentration in the interstitial domain is defined as the description of IPH area according to the diffusion and convection with the interstitial fluid flow, as well as the extravascular movement across the leaky vessel wall. The simulation results demonstrate a series of pathophysiological phenomena during the vulnerable progression of an atherosclerotic plaque, including the expanding necrotic core, the exacerbated inflammation, the high microvessel density (MVD) region at the shoulder areas, the transvascular flow through the capillary wall and the IPH. The important role of IPH in the plaque destabilization is evidenced by simulations with varied model parameters. It is found that the IPH can significantly speed up the plaque vulnerability by increasing necrotic core and thinning fibrous cap. In addition, the decreased MVD and vessel permeability may slow down the process of plaque destabilization by reducing the IPH dramatically. We envision that the present model and its future advances can serve as a valuable theoretical platform for studying the dynamic changes in the microenvironment during the plaque destabilization. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:53 / 65
页数:13
相关论文
共 50 条
  • [21] Role of Interleukin-18 in Destabilization of the Atherosclerotic Plaque in Humans
    P. V. Pigarevskii
    S. V. Maltseva
    V. A. Snegova
    N. G. Davydova
    Bulletin of Experimental Biology and Medicine, 2014, 157 : 821 - 824
  • [22] Coupled Modeling of Lipid Deposition, Inflammatory Response and Intraplaque Angiogenesis in Atherosclerotic Plaque
    Guo, Muyi
    Cai, Yan
    He, Chunliu
    Li, Zhiyong
    ANNALS OF BIOMEDICAL ENGINEERING, 2019, 47 (02) : 439 - 452
  • [23] Coupled Modeling of Lipid Deposition, Inflammatory Response and Intraplaque Angiogenesis in Atherosclerotic Plaque
    Muyi Guo
    Yan Cai
    Chunliu He
    Zhiyong Li
    Annals of Biomedical Engineering, 2019, 47 : 439 - 452
  • [24] Critical mechanical conditions around neovessels in carotid atherosclerotic plaque may promote intraplaque hemorrhage
    Teng, Zhongzhao
    He, Jing
    Degnan, Andrew J.
    Chen, Shengyong
    Sadat, Umar
    Bahaei, Nasim Sheikh
    Rudd, James H. F.
    Gillard, Jonathan H.
    ATHEROSCLEROSIS, 2012, 223 (02) : 321 - 326
  • [25] Finite element analysis of a rupture-induced deformation of a carotid atherosclerotic plaque with intraplaque hemorrhage
    Esmaeili Monir H.
    Senju O.
    Ogata T.
    Inoue T.
    Sakata N.
    Yamada H.
    Yamada, Hiroshi (yamada@life.kyutech.ac.jp), 2018, Japan Society of Mechanical Engineers (13):
  • [26] Association of angiogenesis-associated genes with atherosclerotic plaque progression, intraplaque hemorrhage, and immune infiltration
    Chai, Quanyou
    Guo, Chunling
    Li, Long
    Cao, Jimin
    Liu, Huimin
    Lu, Zhaoyang
    HELIYON, 2024, 10 (12)
  • [27] Association Between Carotid Atherosclerotic Plaque Calcification and Intraplaque Hemorrhage A Magnetic Resonance Imaging Study
    Lin, Ruolan
    Chen, Shuo
    Liu, Gaifen
    Xue, Yunjing
    Zhao, Xihai
    ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 2017, 37 (06) : 1228 - +
  • [28] A response to the letter regarding the pleiotropic effects of fluvastatin on acute inflammatory response and the role of MMP-9 in plaque destabilization and intraplaque hemorrhage
    Nakamura, Kae
    Sasaki, Takeshi
    Cheng, Xian Wu
    Kuzuya, Masafumi
    ATHEROSCLEROSIS, 2009, 206 (02) : 351 - 352
  • [29] Near-Infrared Autofluorescence (NIRAF) in Atherosclerotic Plaque Dissociates from Intraplaque Hemorrhage and Bilirubin
    Chen, Weiyu
    Nadel, James
    Tumanov, Sergey
    Stocker, Roland
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2023, 24 (13)
  • [30] Atherosclerotic Plaque Rupture and Intraplaque Hemorrhage Do Not Correlate With Symptoms in Severe Carotid Artery Stenosis
    Parodi, Juan Carlos
    Beigelman, Ricardo
    Zurru, Maria C.
    Milei, Jose
    STROKE, 2018, 49