Multi-well plate cell contraction assay detects negatively correlated cellular responses to pharmacological inhibitors in contractility and migration

To enable large-scale screening of signaling molecules and drugs that regulate cellular contractility-associated mechanotransduction, we previously modified, particularly in terms of the capability of efficiently collecting big data, conventional methodologies using wrinkled substrates to determine...

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Veröffentlicht in:Biochemical and biophysical research communications 2020-01, Vol.521 (2), p.527-532
Hauptverfasser: Nehwa, Foncham Jermia, Matsui, Tsubasa S., Honghan, Li, Matsunaga, Daiki, Sakaguchi, Yoshiyuki, Deguchi, Shinji
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Sprache:eng
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Zusammenfassung:To enable large-scale screening of signaling molecules and drugs that regulate cellular contractility-associated mechanotransduction, we previously modified, particularly in terms of the capability of efficiently collecting big data, conventional methodologies using wrinkled substrates to determine the cellular contractility. Here, we present a new system to perform the wrinkle-based cell force assay in a multi-well plate format conformed to standardized geometric configurations and compatible with available technologies such as automated plate readers. With this highly improved throughput in terms of hardware as well as software using a deep learning-based technology, we evaluated the effect of treating cells with various types of pharmacological inhibitors on the cellular contractility. We found opposite responses of cells to the inhibitors between the contractility and collective migration activities. While similar inverse relationships between the contractility and migration have been reported in separate studies, our results here with the high-throughput screening system more broadly generalized these observations. •Technologies for high-throughput cell contraction assay were developed.•Cellular contractility was probed in multi-well plates and deep learning.•Responses to inhibitors were in general opposite in contractility and migration.
ISSN:0006-291X
1090-2104
DOI:10.1016/j.bbrc.2019.10.160