Literature DB >> 27900377

Microfluidic technologies in cell isolation and analysis for biomedical applications.

Jing Wu1, Qiushui Chen2, Jin-Ming Lin2.   

Abstract

Efficient platforms for cell isolation and analysis play an important role in applied and fundamental biomedical studies. As cells commonly have a size of around 10 microns, conventional handling approaches at a large scale are still challenged in precise control and efficient recognition of cells for further performance of isolation and analysis. Microfluidic technologies have become more prominent in highly efficient cell isolation for circulating tumor cells (CTCs) detection, single-cell analysis and stem cell separation, since microfabricated devices allow for the spatial and temporal control of complex biochemistries and geometries by matching cell morphology and hydrodynamic traps in a fluidic network, as well as enabling specific recognition with functional biomolecules in the microchannels. In addition, the fabrication of nano-interfaces in the microchannels has been increasingly emerging as a very powerful strategy for enhancing the capability of cell capture by improving cell-interface interactions. In this review, we focus on highlighting recent advances in microfluidic technologies for cell isolation and analysis. We also describe the general biomedical applications of microfluidic cell isolation and analysis, and finally make a prospective for future studies.

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Year:  2017        PMID: 27900377     DOI: 10.1039/c6an01939k

Source DB:  PubMed          Journal:  Analyst        ISSN: 0003-2654            Impact factor:   4.616


  8 in total

1.  Entrapment of Prostate Cancer Circulating Tumor Cells with a Sequential Size-Based Microfluidic Chip.

Authors:  Xiang Ren; Brittni M Foster; Parham Ghassemi; Jeannine S Strobl; Bethany A Kerr; Masoud Agah
Journal:  Anal Chem       Date:  2018-06-01       Impact factor: 6.986

2.  Direct enrichment of pathogens from physiological samples of high conductivity and viscosity using H-filter and positive dielectrophoresis.

Authors:  Dongyang Cai; Qiaolian Yi; Chaohua Shen; Ying Lan; Gerald Urban; Wenbin Du
Journal:  Biomicrofluidics       Date:  2018-01-23       Impact factor: 2.800

Review 3.  Microfluidic systems for hydrodynamic trapping of cells and clusters.

Authors:  Qiyue Luan; Celine Macaraniag; Jian Zhou; Ian Papautsky
Journal:  Biomicrofluidics       Date:  2020-05-20       Impact factor: 2.800

Review 4.  Recent Developments of High-Resolution Chemical Imaging Systems Based on Light-Addressable Potentiometric Sensors (LAPSs).

Authors:  Tao Liang; Yong Qiu; Ying Gan; Jiadi Sun; Shuqi Zhou; Hao Wan; Ping Wang
Journal:  Sensors (Basel)       Date:  2019-10-03       Impact factor: 3.576

5.  3D printed microfluidic devices for circulating tumor cells (CTCs) isolation.

Authors:  Juhong Chen; Chun-Yen Liu; Xinchang Wang; Eric Sweet; Nathaniel Liu; Xiaohua Gong; Liwei Lin
Journal:  Biosens Bioelectron       Date:  2019-11-16       Impact factor: 12.545

6.  Particle Focusing under Newtonian and Viscoelastic Flow in a Straight Rhombic Microchannel.

Authors:  Joo-Yong Kwon; Taehoon Kim; Jungwoo Kim; Younghak Cho
Journal:  Micromachines (Basel)       Date:  2020-11-11       Impact factor: 2.891

7.  Particle Focusing in a Straight Microchannel with Non-Rectangular Cross-Section.

Authors:  Uihwan Kim; Joo-Yong Kwon; Taehoon Kim; Younghak Cho
Journal:  Micromachines (Basel)       Date:  2022-01-20       Impact factor: 2.891

8.  Senescence chips for ultrahigh-throughput isolation and removal of senescent cells.

Authors:  Yuchao Chen; Pan Mao; Antoine M Snijders; Daojing Wang
Journal:  Aging Cell       Date:  2018-01-16       Impact factor: 9.304

  8 in total

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