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Multi-parametric functional imaging of cell cultures and tissues with a CMOS microelectrode array

Authors :
Jeffrey Abbott
Avik Mukherjee
Wenxuan Wu
Tianyang Ye
Han Sae Jung
Kevin M. Cheung
Rona S. Gertner
Markus Basan
Donhee Ham
Hongkun Park
Source :
Lab on a chip. 22(7)
Publication Year :
2022

Abstract

Electrode-based impedance and electrochemical measurements can provide cell-biology information that is difficult to obtain using optical-microscopy techniques. Such electrical methods are non-invasive, label-free, and continuous, eliminating the need for fluorescence reporters and overcoming optical imaging's throughput/temporal resolution limitations. Nonetheless, electrode-based techniques have not been heavily employed because devices typically contain few electrodes per well, resulting in noisy aggregate readouts. Complementary metal-oxide-semiconductor (CMOS) microelectrode arrays (MEAs) have sometimes been used for electrophysiological measurements with thousands of electrodes per well at sub-cellular pitches, but only basic impedance mappings of cell attachment have been performed outside of electrophysiology. Here, we report on new field-based impedance mapping and electrochemical mapping/patterning techniques to expand CMOS-MEA cell-biology applications. The methods enable accurate measurement of cell attachment, growth/wound healing, cell-cell adhesion, metabolic state, and redox properties with single-cell spatial resolution (20 μm electrode pitch). These measurements allow the quantification of adhesion and metabolic differences of cells expressing oncogenes

Details

ISSN :
14730189
Volume :
22
Issue :
7
Database :
OpenAIRE
Journal :
Lab on a chip
Accession number :
edsair.doi.dedup.....2fe73306de9a8cb2dc144ff60d3f2f75