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Development and Optimization of a High-Throughput Bioassay for TRPM7 Ion Channel Inhibitors
Author(s) -
Brandi Castillo,
Peter Pörzgen,
Reinhold Penner,
F. David Horgen,
Andrea Fleig
Publication year - 2010
Publication title -
slas discovery
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.907
H-Index - 75
eISSN - 2472-5560
pISSN - 2472-5552
DOI - 10.1177/1087057110368294
Subject(s) - trpm7 , bioassay , cell growth , divalent , biophysics , intracellular , hek 293 cells , high throughput screening , ion channel , chemistry , cell , microbiology and biotechnology , biology , biochemistry , receptor , genetics , organic chemistry
TRPM7 is a ubiquitously expressed and constitutively active divalent cation channel essential for cell survival and proliferation because it provides a mechanism for Mg2+ entry. This makes the channel an attractive target for proliferative diseases. In keeping with its role in Mg2+ homeostasis, TRPM7 is inhibited by intracellular Mg2+ and Mg-ATP. TRPM7 has been implicated in anoxia-mediated cell death following brain ischemia. Despite its critical role in ischemic cell death and cell proliferation, there are no reports of selective inhibitors of TRPM7. The authors developed and optimized a fluorescent dye-based bioassay measuring the fluorescence quench of fura-2 by TRPM7-mediated Mn2+ influx in HEK293 cells that stably overexpress TRPM7. The following bioassay conditions were evaluated: (a) cell density, (b) dye loading conditions, (c) bioassay temperature, (d) concentration of the fura-2 quenching agent Mn2+, and (e) concentration of vehicle solvent. The bioassay was validated by measuring the effects of the known (nonselective) inhibitor 2-APB and La3+ on Mn2+ influx, and furthermore, the performance of the assay was evaluated by screening a subset of a marine bacteria-derived extract library. The quality of the bioassay window is excellent based on an established statistical parameter used to evaluate high-throughput screening window quality (Z and Z' factors > or =0.5).

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