Literature DB >> 22763751

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

Shiang-Chi Lin1, Pei-Wen Yen, Chien-Chung Peng, Yi-Chung Tung.   

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.

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Year:  2012        PMID: 22763751     DOI: 10.1039/c2lc40246g

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  10 in total

1.  Standing surface acoustic wave (SSAW)-based microfluidic cytometer.

Authors:  Yuchao Chen; Ahmad Ahsan Nawaz; Yanhui Zhao; Po-Hsun Huang; J Phillip McCoy; Stewart J Levine; Lin Wang; Tony Jun Huang
Journal:  Lab Chip       Date:  2014-03-07       Impact factor: 6.799

2.  Three dimensional microfluidics with embedded microball lenses for parallel and high throughput multicolor fluorescence detection.

Authors:  Y J Fan; Y C Wu; Y Chen; Y C Kung; T H Wu; K W Huang; H J Sheen; P Y Chiou
Journal:  Biomicrofluidics       Date:  2013-08-21       Impact factor: 2.800

3.  Microfluidic flow cytometry: The role of microfabrication methodologies, performance and functional specification.

Authors:  Anil B Shrirao; Zachary Fritz; Eric M Novik; Gabriel M Yarmush; Rene S Schloss; Jeffrey D Zahn; Martin L Yarmush
Journal:  Technology (Singap World Sci)       Date:  2018-03-16

Review 4.  Disease diagnostics using hydrodynamic flow focusing in microfluidic devices: Beyond flow cytometry.

Authors:  Aakash Rajawat; Siddhartha Tripathi
Journal:  Biomed Eng Lett       Date:  2020-01-03

5.  Pulsed laser activated cell sorting with three dimensional sheathless inertial focusing.

Authors:  Yue Chen; Aram J Chung; Ting-Hsiang Wu; Michael A Teitell; Dino Di Carlo; Pei-Yu Chiou
Journal:  Small       Date:  2014-02-17       Impact factor: 13.281

6.  An inexpensive microfluidic device for three-dimensional hydrodynamic focusing in imaging flow cytometry.

Authors:  Yogesh M Patel; Sanidhya Jain; Abhishek Kumar Singh; Kedar Khare; Sarita Ahlawat; Supreet Singh Bahga
Journal:  Biomicrofluidics       Date:  2020-12-14       Impact factor: 2.800

7.  A contact-imaging based microfluidic cytometer with machine-learning for single-frame super-resolution processing.

Authors:  Xiwei Huang; Jinhong Guo; Xiaolong Wang; Mei Yan; Yuejun Kang; Hao Yu
Journal:  PLoS One       Date:  2014-08-11       Impact factor: 3.240

8.  Using binary optical elements (BOEs) to generate rectangular spots for illumination in micro flow cytometer.

Authors:  Jingjing Zhao; Zheng You
Journal:  Biomicrofluidics       Date:  2016-09-28       Impact factor: 2.800

Review 9.  Microfluidic-Based Single-Cell Study: Current Status and Future Perspective.

Authors:  Haiwa Wu; Jing Zhu; Yao Huang; Daming Wu; Jingyao Sun
Journal:  Molecules       Date:  2018-09-13       Impact factor: 4.411

10.  Controlling Shapes in a Coaxial Flow Focusing Microfluidic Device: Experiments and Theory.

Authors:  Romen Rodriguez-Trujillo; Yu-Han Kim-Im; Aurora Hernandez-Machado
Journal:  Micromachines (Basel)       Date:  2020-01-13       Impact factor: 2.891

  10 in total

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