Integrated Immunomagnetic Bead-Based Microfluidic Chip for Exosomes Isolation
Exosomes are essential early biomarkers for health monitoring and cancer diagnosis. A prerequisite for further investigation of exosomes is the isolation, which is technically challenging due to the complexity of body fluids. This paper presents the development of an integrated microfluidic chip for...
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doaj-09c34cfac0fc45329f9fae7ef55cdfd52020-11-25T02:58:40ZengMDPI AGMicromachines2072-666X2020-05-011150350310.3390/mi11050503Integrated Immunomagnetic Bead-Based Microfluidic Chip for Exosomes IsolationFuzhou Niu0Xifu Chen1Xuemei Niu2Yifan Cai3Qingkui Zhang4Tao Chen5Hao Yang6School of Mechanical Engineering, Suzhou University of Science and Technology, Suzhou 215000, ChinaSchool of Mechanical Engineering, Suzhou University of Science and Technology, Suzhou 215000, ChinaSchool of Mechanical Engineering, Suzhou University of Science and Technology, Suzhou 215000, ChinaRobotics and Microsystems Center, College of Mechanical and Electrical Engineering, Soochow University, Suzhou 215000, ChinaSchool of Mechanical Engineering, Suzhou University of Science and Technology, Suzhou 215000, ChinaRobotics and Microsystems Center, College of Mechanical and Electrical Engineering, Soochow University, Suzhou 215000, ChinaRobotics and Microsystems Center, College of Mechanical and Electrical Engineering, Soochow University, Suzhou 215000, ChinaExosomes are essential early biomarkers for health monitoring and cancer diagnosis. A prerequisite for further investigation of exosomes is the isolation, which is technically challenging due to the complexity of body fluids. This paper presents the development of an integrated microfluidic chip for exosomes isolation, which combines the traditional immunomagnetic bead-based protocol and the recently emerging microfluidic approach, resulting in benefits from both the high-purity of the former and the automated continuous superiority of the latter. The chip was designed based on an S-shaped micromixer with embedded baffle. The excellent mixing efficiency of this micromixer compared with Y-shaped and S-shaped micromixers was verified by simulation and experiments. The photolithography technique was employed to fabricate the integrated microfluidic chip, and the manufacturing process was elucidated. We finally established an experimental platform for exosomes isolation with the fabricated microfluidic chip built in. Exosomes isolation experiments were conducted using this platform. The distribution and morphology of the isolated exosomes were observed by transmission electron microscopy (TEM) and scanning electron microscopy (SEM). Quantitative size analyses based on transmission electron micrographs indicated that most of the obtained particles were between 30 and 150 nm. Western blot analyses of the isolated exosomes and the serum were conducted to verify the platform’s capability of isolating a certain subpopulation of exosomes corresponding to specified protein markers (CD63). The complete time for isolation of 150 μL serum samples was approximately 50 min, which was highly competitive with the reported existing protocols. Experimental results proved the capacity of the established integrated microfluidic chip for exosomes isolation with high purity, high integrity, and excellent efficiency. The platform can be further developed to make it possible for practical use in clinical applications as a universal exosomes isolation and characterization tool.https://www.mdpi.com/2072-666X/11/5/503exosomes isolationimmunomagnetic bead-basedmicrofluidic chipmicromixers |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Fuzhou Niu Xifu Chen Xuemei Niu Yifan Cai Qingkui Zhang Tao Chen Hao Yang |
spellingShingle |
Fuzhou Niu Xifu Chen Xuemei Niu Yifan Cai Qingkui Zhang Tao Chen Hao Yang Integrated Immunomagnetic Bead-Based Microfluidic Chip for Exosomes Isolation Micromachines exosomes isolation immunomagnetic bead-based microfluidic chip micromixers |
author_facet |
Fuzhou Niu Xifu Chen Xuemei Niu Yifan Cai Qingkui Zhang Tao Chen Hao Yang |
author_sort |
Fuzhou Niu |
title |
Integrated Immunomagnetic Bead-Based Microfluidic Chip for Exosomes Isolation |
title_short |
Integrated Immunomagnetic Bead-Based Microfluidic Chip for Exosomes Isolation |
title_full |
Integrated Immunomagnetic Bead-Based Microfluidic Chip for Exosomes Isolation |
title_fullStr |
Integrated Immunomagnetic Bead-Based Microfluidic Chip for Exosomes Isolation |
title_full_unstemmed |
Integrated Immunomagnetic Bead-Based Microfluidic Chip for Exosomes Isolation |
title_sort |
integrated immunomagnetic bead-based microfluidic chip for exosomes isolation |
publisher |
MDPI AG |
series |
Micromachines |
issn |
2072-666X |
publishDate |
2020-05-01 |
description |
Exosomes are essential early biomarkers for health monitoring and cancer diagnosis. A prerequisite for further investigation of exosomes is the isolation, which is technically challenging due to the complexity of body fluids. This paper presents the development of an integrated microfluidic chip for exosomes isolation, which combines the traditional immunomagnetic bead-based protocol and the recently emerging microfluidic approach, resulting in benefits from both the high-purity of the former and the automated continuous superiority of the latter. The chip was designed based on an S-shaped micromixer with embedded baffle. The excellent mixing efficiency of this micromixer compared with Y-shaped and S-shaped micromixers was verified by simulation and experiments. The photolithography technique was employed to fabricate the integrated microfluidic chip, and the manufacturing process was elucidated. We finally established an experimental platform for exosomes isolation with the fabricated microfluidic chip built in. Exosomes isolation experiments were conducted using this platform. The distribution and morphology of the isolated exosomes were observed by transmission electron microscopy (TEM) and scanning electron microscopy (SEM). Quantitative size analyses based on transmission electron micrographs indicated that most of the obtained particles were between 30 and 150 nm. Western blot analyses of the isolated exosomes and the serum were conducted to verify the platform’s capability of isolating a certain subpopulation of exosomes corresponding to specified protein markers (CD63). The complete time for isolation of 150 μL serum samples was approximately 50 min, which was highly competitive with the reported existing protocols. Experimental results proved the capacity of the established integrated microfluidic chip for exosomes isolation with high purity, high integrity, and excellent efficiency. The platform can be further developed to make it possible for practical use in clinical applications as a universal exosomes isolation and characterization tool. |
topic |
exosomes isolation immunomagnetic bead-based microfluidic chip micromixers |
url |
https://www.mdpi.com/2072-666X/11/5/503 |
work_keys_str_mv |
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1724705719273390080 |