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单通道层,单鞘流入口微流控流式细胞仪,具有三维流体动力学聚焦。

Single channel layer, single sheath-flow inlet microfluidic flow cytometer with three-dimensional hydrodynamic focusing.

机构信息

Graduate Institute of Electronics Engineering, National Taiwan University, Taipei 10617, Taiwan.

出版信息

Lab Chip. 2012 Sep 7;12(17):3135-41. doi: 10.1039/c2lc40246g. Epub 2012 Jul 5.

Abstract

Flow cytometry is a technique capable of optically characterizing biological particles in a high-throughput manner. In flow cytometry, three dimensional (3D) hydrodynamic focusing is critical for accurate and consistent measurements. Due to the advantages of microfluidic techniques, a number of microfluidic flow cytometers with 3D hydrodynamic focusing have been developed in recent decades. However, the existing devices consist of multiple layers of microfluidic channels and tedious fluidic interconnections. As a result, these devices often require complicated fabrication and professional operation. Consequently, the development of a robust and reliable microfluidic flow cytometer for practical biological applications is desired. This paper develops a microfluidic device with a single channel layer and single sheath-flow inlet capable of achieving 3D hydrodynamic focusing for flow cytometry. The sheath-flow stream is introduced perpendicular to the microfluidic channel to encircle the sample flow. In this paper, the flow fields are simulated using a computational fluidic dynamic (CFD) software, and the results show that the 3D hydrodynamic focusing can be successfully formed in the designed microfluidic device under proper flow conditions. The developed device is further characterized experimentally. First, confocal microscopy is exploited to investigate the flow fields. The resultant Z-stack confocal images show the cross-sectional view of 3D hydrodynamic with flow conditions that agree with the simulated ones. Furthermore, the flow cytometric detections of fluorescence beads are performed using the developed device with various flow rate combinations. The measurement results demonstrate that the device can achieve great detection performances, which are comparable to the conventional flow cytometer. In addition, the enumeration of fluorescence-labelled cells is also performed to show its practicality for biological applications. Consequently, the microfluidic flow cytometer developed in this paper provides a practical platform that can be used for routine analysis in biological laboratories. Additionally, the 3D hydrodynamic focusing channel design can also be applied to various applications that can advance the lab on a chip research.

摘要

流式细胞术是一种能够以高通量方式对生物粒子进行光学特性分析的技术。在流式细胞术中,三维(3D)流体动力学聚焦对于准确和一致的测量至关重要。由于微流控技术的优势,近几十年来已经开发出了许多具有 3D 流体动力学聚焦的微流控流式细胞仪。然而,现有的设备由多个微流道层和繁琐的流体连接组成。因此,这些设备通常需要复杂的制造和专业的操作。因此,需要开发一种稳健可靠的微流控流式细胞仪,以满足实际的生物学应用需求。本文开发了一种具有单个通道层和单个鞘流入口的微流控装置,能够实现流式细胞术的 3D 流体动力学聚焦。鞘流流被引入垂直于微流道,以包围样品流。在本文中,使用计算流体动力学(CFD)软件对流场进行模拟,结果表明,在适当的流动条件下,可在设计的微流控装置中成功形成 3D 流体动力学聚焦。进一步对所开发的装置进行了实验表征。首先,利用共聚焦显微镜研究流场。所得的 Z 堆叠共聚焦图像显示了与模拟结果一致的具有流动条件的 3D 流体动力学的横截面视图。此外,使用所开发的装置以各种流速组合进行荧光珠的流式细胞术检测。测量结果表明,该装置可实现出色的检测性能,与传统流式细胞仪相当。此外,还进行了荧光标记细胞的计数,以展示其在生物学应用中的实用性。因此,本文所开发的微流控流式细胞仪提供了一个实用的平台,可用于生物实验室的常规分析。此外,3D 流体动力学聚焦通道设计还可应用于各种应用,以推进芯片实验室的研究。

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