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生理血流速率下用于体外循环中细胞因子清除的磁性粒子捕获模型。

Model of Magnetic Particle Capture Under Physiological Flow Rates for Cytokine Removal During Cardiopulmonary Bypass.

出版信息

IEEE Trans Biomed Eng. 2021 Apr;68(4):1198-1207. doi: 10.1109/TBME.2020.3023392. Epub 2021 Mar 18.

Abstract

OBJECTIVE

The objective of this study is to design a physical model of a magnetic filtration system which can separate magnetic nanoparticle (MNP)-tagged cytokines from fluid at physiologically relevant flow rates employed during cardiopulmonary bypass (CPB) procedures.

METHODS

The Navier-Stokes equations for the pressure driven flow in the chamber and the quasistatic stray magnetic field produced by an array of permanent magnets were solved using finite element analysis in COMSOL Multiphysics for 2D and 3D representations of the flow chamber. Parameters affecting the drag and magnetic forces including flow chamber dimensions, high gradient magnet array configurations, and particle properties, were changed and evaluated for their effect on MNP capture.

RESULTS

Flow chamber dimensions which achieve appropriate flow conditions for CPB were identified, and magnetic force within the chamber decreased with increased chamber height. A magnetic "block" array produced the highest magnetic force within the chamber. Polymeric microparticles loaded with MNPs were shown to have increased particle capture with increased hydrodynamic diameter.

CONCLUSION

The model achieved a predicted efficiency up to 100% capture in a single-pass of fluid flowing at 1.75 L/min.

SIGNIFICANCE

This work is an important step in designing a magnetic flow chamber that can remove the magnetically tagged cytokines under high flow employed during CPB. Cytokines have been shown to stimulate the systemic inflammatory response (SIR) associated with CPB and are an established therapeutic target to mitigate the SIR. In the long term, this work aims to guide researchers in the more accurate design of magnetic separation systems.

摘要

目的

本研究旨在设计一种可在体外循环 (CPB) 过程中采用的生理相关流速下从流体中分离出磁性纳米颗粒 (MNP) 标记细胞因子的磁性过滤系统物理模型。

方法

使用 COMSOL Multiphysics 中的有限元分析对流动腔室的二维和三维表示形式,求解了压力驱动流的纳维-斯托克斯方程和由永磁体阵列产生的准静态杂散磁场。改变了影响曳力和磁场力的参数,包括流动腔室尺寸、高梯度磁体阵列配置和颗粒特性,并对其对 MNP 捕获的影响进行了评估。

结果

确定了达到 CPB 适当流动条件的流动腔室尺寸,并且腔室内的磁场力随腔室高度的增加而减小。磁“块”阵列在腔室内产生了最高的磁场力。载有 MNP 的聚合物微球显示出随着水动力直径的增加而增加的颗粒捕获率。

结论

该模型在 1.75 L/min 的流速下单次通过时实现了高达 100%的预测捕获效率。

意义

这项工作是设计一种可在 CPB 过程中采用的高流速下去除磁性标记细胞因子的磁性流动腔室的重要步骤。细胞因子已被证明会刺激与 CPB 相关的全身炎症反应 (SIR),并且是减轻 SIR 的既定治疗靶点。从长远来看,这项工作旨在为磁性分离系统的更准确设计提供指导。

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