设计和模拟基于微流控技术的人工肾小球超滤装置,以减少细胞引起的堵塞。

IF 2.2 3区 医学 Q3 ENGINEERING, BIOMEDICAL Artificial organs Pub Date : 2024-07-30 DOI:10.1111/aor.14834
Bhagyashree Saud, Koushik Guha, Jacopo Iannacci, Sergei Selishchev, Pratim Sengupta, Arindam Dutta
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引用次数: 0

摘要

背景:基于微流控技术的肾小球芯片(GoC)大多以细胞为基础,即采用三维细胞培养技术培养肾小球细胞,以模拟肾小球超滤。这些芯片需要高度维护,以保持细胞活力完好。目前已有一些构建非基于细胞的肾小球芯片的方法,但其中许多方法都存在膜堵塞的缺点。本文介绍了一种不含透析液的微流体通道的结构设计和模拟研究,用于复制人体肾小球滤过屏障的功能。当前工作的主要进展是通过结合预过滤器消除细胞成分并对血浆进行过滤来解决污垢问题:方法:利用 COMSOL Multiphysics 5.6 中的层流混合物模型模拟微通道中的血流行为。研究了微通道对滤液分离的几何影响。通过改变微通道入口处的速度和过滤膜的孔径来观察流出量和过滤率的变化:结果:根据形成的过滤分数(FF%)计算出该装置的效率。模拟结果显示,获得的滤液约为通道中等离子流速的 20%,这与肾小球滤过率相似:结论:鉴于该装置不依赖于生长细胞的功能,其非基于细胞的设计预计将具有更长的使用寿命。通过避免在设备内部培养细胞,可以降低设备成本。它可以作为肾小球功能单元与肾脏模型的其他单元集成,从而构建一个完整的人工肾脏。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Design and simulation of a microfluidics-based artificial glomerular ultrafiltration unit to reduce cell-induced fouling.

Background: The microfluidic-based Glomerulus-on-Chips (GoC) are mostly cell based, that is, 3D cell culture techniques are used to culture glomerular cells in order to mimic glomerular ultrafiltration. These chips require high maintenance to keep cell viability intact. There have been some approaches to build non-cell-based GoCs but many of these approaches have the drawback of membrane fouling. This article presents a structural design and simulation study of a dialysate free microfluidic channel for replicating the function of the human glomerular filtration barrier. The key advancement of the current work is addressing the fouling issue by combining a pre-filter to eliminate cellular components and performing filtration on the blood plasma.

Methods: The Laminar Flow Mixture Model in COMSOL Multiphysics 5.6 has been utilized to simulate the behavior of blood flow in the microchannels. The geometrical effect of microchannels on the separation of the filtrate was investigated. The velocity at the inlet of the microchannel and pore size of the filtration membrane are varied to see the change in outflow and filtration fraction.

Results: The efficiency of the device is calculated in terms of the filtration fraction (FF%) formed. Simulation results show that the filtrate obtained is ~20% of the plasma flow rate in the channel, which resembles the glomerular filtration fraction.

Conclusion: Given that it is not dependent on the functionality of grown cells, the proposed device is anticipated to have a longer lifespan due to its non-cell-based design. The device's cost can be reduced by avoiding cell cultivation inside of it. It can be integrated as a glomerular functional unit with other units of kidney model to build a fully developed artificial kidney.

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来源期刊
Artificial organs
Artificial organs 工程技术-工程:生物医学
CiteScore
4.30
自引率
12.50%
发文量
303
审稿时长
4-8 weeks
期刊介绍: Artificial Organs is the official peer reviewed journal of The International Federation for Artificial Organs (Members of the Federation are: The American Society for Artificial Internal Organs, The European Society for Artificial Organs, and The Japanese Society for Artificial Organs), The International Faculty for Artificial Organs, the International Society for Rotary Blood Pumps, The International Society for Pediatric Mechanical Cardiopulmonary Support, and the Vienna International Workshop on Functional Electrical Stimulation. Artificial Organs publishes original research articles dealing with developments in artificial organs applications and treatment modalities and their clinical applications worldwide. Membership in the Societies listed above is not a prerequisite for publication. Articles are published without charge to the author except for color figures and excess page charges as noted.
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Issue Information Cover Image Upcoming Meetings Development and validation of a questionnaire on bodily experience in VAD patients (BE-S). Single-center experience of extended brain-death donor heart preservation with the organ care system.
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