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Identifying regulators for EAG1 channels with a novel electrophysiology and tryptophan fluorescence based screen.


ABSTRACT:

Background

Ether-à-go-go (EAG) channels are expressed throughout the central nervous system and are also crucial regulators of cell cycle and tumor progression. The large intracellular amino- and carboxy- terminal domains of EAG1 each share similarity with known ligand binding motifs in other proteins, yet EAG1 channels have no known regulatory ligands.

Methodology/principal findings

Here we screened a library of small biologically relevant molecules against EAG1 channels with a novel two-pronged screen to identify channel regulators. In one arm of the screen we used electrophysiology to assess the functional effects of the library compounds on full-length EAG1 channels. In an orthogonal arm, we used tryptophan fluorescence to screen for binding of the library compounds to the isolated C-terminal region.

Conclusions/significance

Several compounds from the flavonoid, indole and benzofuran chemical families emerged as binding partners and/or regulators of EAG1 channels. The two-prong screen can aid ligand and drug discovery for ligand-binding domains of other ion channels.

SUBMITTER: Brelidze TI 

PROVIDER: S-EPMC2932742 | biostudies-literature | 2010 Sep

REPOSITORIES: biostudies-literature

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Publications

Identifying regulators for EAG1 channels with a novel electrophysiology and tryptophan fluorescence based screen.

Brelidze Tinatin I TI   Carlson Anne E AE   Davies Douglas R DR   Stewart Lance J LJ   Zagotta William N WN  

PloS one 20100902 9


<h4>Background</h4>Ether-à-go-go (EAG) channels are expressed throughout the central nervous system and are also crucial regulators of cell cycle and tumor progression. The large intracellular amino- and carboxy- terminal domains of EAG1 each share similarity with known ligand binding motifs in other proteins, yet EAG1 channels have no known regulatory ligands.<h4>Methodology/principal findings</h4>Here we screened a library of small biologically relevant molecules against EAG1 channels with a n  ...[more]

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