微血管狭窄严重程度和血细胞比容水平对红细胞动力学和血小板边缘化的影响:数值研究

IF 5.7 1区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY International Journal of Engineering Science Pub Date : 2024-09-28 DOI:10.1016/j.ijengsci.2024.104155
Ahmed Elhanafy , Yasser Abuouf , Samir Elsagheer , Shinichi Ookawara , Sameh Nada , Mahmoud Ahmed
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引用次数: 0

摘要

研究血细胞的动态行为有助于了解许多微血管疾病。例如,微血管狭窄会严重影响红细胞的动态变化,从而导致多种微血管疾病。因此,本研究旨在对不同狭窄程度和血细胞比容的狭窄微血管中的细胞血流进行数值模拟,以研究具有重要临床意义的血液动力学特征。研究预测了红细胞的迁移、速度和变形。此外,还研究了血小板的边缘化和无细胞层的形成。因此,考虑了血细胞及其与周围血浆相互作用的三维数值模拟。模拟使用了针对细胞血流开发的经过验证的代码。红细胞的迁移和血小板的边缘化得到了证实,这增强了代码的有效性。所得结果表明,红细胞迁移和血小板边缘化与血细胞比容水平有很大关系,这与其他已发表的研究结果一致。无细胞层厚度沿狭窄血管呈不对称分布,最大值出现在狭窄的咽喉处,这极大地影响了血液表观粘度,并导致血浆在该区域撇去。此外,研究还发现无细胞层厚度与狭窄严重程度和血细胞比容水平密切相关。由于无细胞层在内皮细胞的功能和结构中的作用,对血管壁剪切应力进行了估算。与健康病例相比,血管狭窄导致血管壁剪切应力减少 75% 以上,其中咽喉部的剪切应力值最大。对 Fahraeus 效应进行了研究,并将所得结果与已发表的实验和计算结果进行了比较,结果一致程度可以接受。
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Effect of micro-vessel stenosis severity and hematocrit level on red blood cell dynamics and platelet margination: A numerical study
Understanding many micro-vascular diseases is aided by examining the dynamical behavior of blood cells. For instance, micro-vascular stenosis significantly influences the dynamics of red blood cells and hence causes several micro-vascular disorders. Thus, the objective of the current study is to numerically simulate cellular blood flow in stenosed micro-vessels with different stenosis severities and hematocrits to examine hemodynamic features which have important clinical implications. Red blood cells’ migration, velocity, and deformation are predicted. Furthermore, platelets’ margination and cell-free layer formation are examined. Accordingly, a three-dimensional numerical simulation of blood cells and their interaction with the surrounding plasma is considered. The simulation is performed using a validated code developed for cellular blood flows. Red blood cells’ migration and platelets’ margination are confirmed, which enhances the validity of the code. The obtained results report a high dependence of red blood cells’ migration and platelets’ margination on the hematocrit level, which agrees with other published studies. An asymmetrical cell-free layer thickness is exhibited along the stenosed vessel, with a maximum value at the throat of the stenosis, which greatly affects blood apparent viscosity and induces plasma skimming in this region. In addition, it is found that the cell-free layer thickness is strongly linked to stenosis severity and the hematocrit level. Due to its role in the endothelial cells’ function and structure, the wall shear stress is estimated. A reduction more than 75 % in the wall shear stress is obtained due to stenosis, with maximum values at the throat compared with the healthy case. The Fahraeus effect is examined, and the obtained results are compared with published experimental and computational works with an acceptable degree of agreement.
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来源期刊
International Journal of Engineering Science
International Journal of Engineering Science 工程技术-工程:综合
CiteScore
11.80
自引率
16.70%
发文量
86
审稿时长
45 days
期刊介绍: The International Journal of Engineering Science is not limited to a specific aspect of science and engineering but is instead devoted to a wide range of subfields in the engineering sciences. While it encourages a broad spectrum of contribution in the engineering sciences, its core interest lies in issues concerning material modeling and response. Articles of interdisciplinary nature are particularly welcome. The primary goal of the new editors is to maintain high quality of publications. There will be a commitment to expediting the time taken for the publication of the papers. The articles that are sent for reviews will have names of the authors deleted with a view towards enhancing the objectivity and fairness of the review process. Articles that are devoted to the purely mathematical aspects without a discussion of the physical implications of the results or the consideration of specific examples are discouraged. Articles concerning material science should not be limited merely to a description and recording of observations but should contain theoretical or quantitative discussion of the results.
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