Literature DB >> 29115319

A planar dielectrophoresis-based chip for high-throughput cell pairing.

ChunHui Wu1, RiFei Chen, Yu Liu, ZhenMing Yu, YouWei Jiang, Xing Cheng.   

Abstract

This paper reports the design and fabrication of a planar chip for high-throughput cell trapping and pairing (more than 2400 single cell-cell pairs in a microwell array) in a 1 × 1.5 cm area by positive dielectrophoresis (p-DEP) within only several minutes. The p-DEP was generated by applying an alternating current signal on a novel two-pair interdigitated array (TPIDA) electrode. The TPIDA electrode not only enabled the planar chip to be incorporated with a most often used PDMS microfluidic channel, but also contributed to a high single cell-cell pairing efficiency up to 74.2% by decreasing the induced electric field during consecutive p-DEP trapping of two cell types. Furthermore, the paired cells in each microwell could be "pushed" together into a microbaffle by a liquid flow through a capillary-sized channel, resulting in single cell-cell contact. More importantly, the planar chip could be used repeatedly by a simple water cleaning process. The planar chip offers an effective way for high-throughput single cell-cell pairing, which could provide a facile platform for cell communication and a precise cell pairing step in cell fusion.

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Year:  2017        PMID: 29115319     DOI: 10.1039/c7lc01082f

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


  10 in total

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Authors:  Masa Kanduser; Mojca Kokalj Imsirovic; Marko Usaj
Journal:  J Membr Biol       Date:  2019-01-22       Impact factor: 1.843

2.  Comparing machine learning and deep learning regression frameworks for accurate prediction of dielectrophoretic force.

Authors:  Sunday Ajala; Harikrishnan Muraleedharan Jalajamony; Midhun Nair; Pradeep Marimuthu; Renny Edwin Fernandez
Journal:  Sci Rep       Date:  2022-07-13       Impact factor: 4.996

Review 3.  Microfluidic Single-Cell Manipulation and Analysis: Methods and Applications.

Authors:  Tao Luo; Lei Fan; Rong Zhu; Dong Sun
Journal:  Micromachines (Basel)       Date:  2019-02-01       Impact factor: 2.891

4.  Using a Dielectrophoretic Microfluidic Biochip Enhanced Fertilization of Mouse Embryo in Vitro.

Authors:  Hong-Yuan Huang; Wei-Lun Kao; Yi-Wen Wang; Da-Jeng Yao
Journal:  Micromachines (Basel)       Date:  2020-07-23       Impact factor: 2.891

Review 5.  Insulator Based Dielectrophoresis: Micro, Nano, and Molecular Scale Biological Applications.

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Journal:  Sensors (Basel)       Date:  2020-09-07       Impact factor: 3.576

6.  Highly Efficient Capture and Quantification of the Airborne Fungal Pathogen Sclerotinia sclerotiorum Employing a Nanoelectrode-Activated Microwell Array.

Authors:  Pedro A Duarte; Lukas Menze; Lian Shoute; Jie Zeng; Oleksandra Savchenko; Jingwei Lyu; Jie Chen
Journal:  ACS Omega       Date:  2021-12-27

Review 7.  Lab-on-Chip Microsystems for Ex Vivo Network of Neurons Studies: A Review.

Authors:  Hongyong Zhang; Guoguang Rong; Sumin Bian; Mohamad Sawan
Journal:  Front Bioeng Biotechnol       Date:  2022-02-16

8.  Magnetophoretic Micro-Distributor for Controlled Clustering of Cells.

Authors:  Jonghwan Yoon; Yumin Kang; Hyeonseol Kim; Sri Ramulu Torati; Keonmok Kim; Byeonghwa Lim; CheolGi Kim
Journal:  Adv Sci (Weinh)       Date:  2021-12-15       Impact factor: 16.806

Review 9.  Methods and platforms for analysis of nucleic acids from single-cell based on microfluidics.

Authors:  Luyao Liu; Xiaobin Dong; Yunping Tu; Guijun Miao; Zhongping Zhang; Lulu Zhang; Zewen Wei; Duli Yu; Xianbo Qiu
Journal:  Microfluid Nanofluidics       Date:  2021-09-22       Impact factor: 2.529

10.  How to Perform a Microfluidic Cultivation Experiment-A Guideline to Success.

Authors:  Sarah Täuber; Julian Schmitz; Luisa Blöbaum; Niklas Fante; Heiko Steinhoff; Alexander Grünberger
Journal:  Biosensors (Basel)       Date:  2021-11-29
  10 in total

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