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使用新型离心微流控乳化与分离平台进行多重诊断分析的细胞封装数值研究

Numerical Investigation of Cell Encapsulation for Multiplexing Diagnostic Assays Using Novel Centrifugal Microfluidic Emulsification and Separation Platform.

作者信息

Ren Yong, Leung Wallace Woon Fong

机构信息

Department of Mechanical, Materials & Manufacturing Engineering, The University of Nottingham Ningbo China, Ningbo 315100, China.

Department of Mechanical Engineering, The Hong Kong Polytechnic University, Hung Hom, Hong Kong, China.

出版信息

Micromachines (Basel). 2016 Jan 25;7(2):17. doi: 10.3390/mi7020017.

Abstract

In the present paper, we report a novel centrifugal microfluidic platform for emulsification and separation. Our design enables encapsulation and incubation of multiple types of cells by droplets, which can be generated at controlled high rotation speed modifying the transition between dripping-to-jetting regimes. The droplets can be separated from continuous phase using facile bifurcated junction design. A three dimensional (3D) model was established to investigate the formation and sedimentation of droplets using the centrifugal microfluidic platform by computational fluid dynamics (CFD). The simulation results were compared to the reported experiments in terms of droplet shape and size to validate the accuracy of the model. The influence of the grid resolution was investigated and quantified. The physics associated with droplet formation and sedimentation is governed by the Bond number and Rossby number, respectively. Our investigation provides insight into the design criteria that can be used to establish centrifugal microfluidic platforms tailored to potential applications, such as multiplexing diagnostic assays, due to the unique capabilities of the device in handling multiple types of cells and biosamples with high throughput. This work can inspire new development of cell encapsulation and separation applications by centrifugal microfluidic technology.

摘要

在本论文中,我们报道了一种用于乳化和分离的新型离心微流控平台。我们的设计能够通过液滴对多种类型的细胞进行封装和培养,这些液滴可以在可控的高转速下产生,通过改变从滴状到喷射状的转变来实现。利用简单的分叉连接设计,液滴可以与连续相分离。通过计算流体动力学(CFD)建立了一个三维(3D)模型,以研究使用离心微流控平台时液滴的形成和沉降。将模拟结果与已报道的实验在液滴形状和尺寸方面进行了比较,以验证模型的准确性。研究并量化了网格分辨率的影响。与液滴形成和沉降相关的物理过程分别由邦德数和罗斯比数控制。由于该设备在高通量处理多种类型的细胞和生物样品方面具有独特能力,我们的研究为可用于建立针对潜在应用(如多重诊断检测)定制的离心微流控平台的设计标准提供了见解。这项工作能够激发离心微流控技术在细胞封装和分离应用方面的新发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b03/6190305/8ac5b456d11d/micromachines-07-00017-g001.jpg

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