基于任意拉格朗日-欧拉算法的肿瘤缺损血管中给药载体运动特性数值研究

Yu-Chung Liao, R. Chein
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引用次数: 1

摘要

本研究基于肿瘤缺损血管增强渗透性和滞留性(EPR)效应对药物递送载体(DDV)在血管中的运动进行了数值研究。本研究采用任意拉格朗日-欧拉算法(ALE)代替传统的粒子跟踪来考虑移动DDV与血流之间的力耦合。采用COMSOL软件提供的ALE和Navier-Stokes模块进行数值模拟。计算域被处理为二维,其中包含三个由肿瘤组织生长引起的跨细胞孔。本研究同时考虑了球形和棒状DDV的运动。当DDV穿过有缺陷的开口间隙时,被认为进入肿瘤组织。仿真结果表明,初始位置和初始尺寸对DDV的运动具有重要的控制作用。当其初始位置靠近血管壁且直径在20 ~ 100 nm之间时,DDV有更大的机会穿过开口间隙。数值模拟还表明,ALE与粒子追迹计算在DDV轨迹上存在显著差异。除了包含旋转运动外,棒状DDV的运动特性与球形DDV相似。与球形DDV相比,棒状DDV由于其旋转运动,进入肿瘤组织的机会较小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical study on drug delivery vehicle motion characteristics in tumor-defective blood vessels using arbitrary Lagrangian-Eulerian Algorithm
This study presented numerical study on the motion of drug delivery vehicle (DDV) in blood vessel based the enhanced permeability and retention (EPR) effect due to the tumor-defective blood vessel. Instead of traditional particle tracing, the arbitrary Lagrangian-Eulerian Algorithm (ALE) was employed in this study to account for the force coupling between the moving DDV and blood flow. The ALE and Navier-Stokes modules facilitated by COMSOL software were employed to carry out the numerical simulations. The computational domain was treated as two-dimensional containing three trans-cellular holes caused by the tumor tissue growth. Motions of both spherical and rod-like DDV were considered in this study. The DDV was considered to enter the tumor tissues when it traveled through the defective opening gaps. The simulated results indicated that the initial locations and size played importation roles on governing the motion of DDV. The DDV had greater chance to travel through the opening gaps when its initial location was close to the vessel wall and its diameter ranged between 20 and 100 nm. The numerical simulations also demonstrated that there was significant difference on the DDV trajectories between ALE and particle tracing computations. The motion characteristics of the rod-like DDV was similar to that of its spherical counterpart except the inclusion of rotational motion. The rod-like DDV had less chance of entering the tumor tissue as compared with the spherical DDV because of its rotational motion.
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