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A fluorescence-based high-throughput screening assay for the identification of T-type calcium channel blockers
Francesco Belardetti1, Elizabeth Tringham, Cyrus Eduljee
1Neuromed Pharmaceuticals Ltd., Vancouver, British Columbia, Canada.
Abstract:
T-type voltage-gated Ca(2+) channels have been implicated in contributing to a broad variety of human disorders, including pain, epilepsy, sleep disturbances, cardiac arrhythmias, and certain types of cancer. However, potent and selective T-type Ca(2+) channel modulators are not yet available for clinical use. This may in part be due to their unique biophysical properties that have delayed the development of high-throughput screening (HTS) assays for identifying blockers. One notable challenge is that at the normal resting membrane potential (V(m)) of cell lines commonly utilized for drug screening purposes, T-type Ca(2+) channels are largely inactivated and thus cannot be supported by typical formats of functional HTS assays to both evoke and quantify the Ca(2+) channel signal. Here we describe a simple method that can successfully support a fluorescence-based functional assay for compounds that modulate T-type Ca(2+)channels. The assay functions by exploiting the pore-forming properties of gramicidin to control the cellular V(m) in advance of T-type Ca(2+) channel activation. Using selected ionic conditions in the presence of gramicidin, T-type Ca(2+) channels are converted from the unavailable, inactivated state to the available, resting state, where they can be subsequently activated by application of extracellular K(+). The fidelity of the assay has been pharmacologically characterized with sample T-type Ca(2+) channel blockers whose potency has been determined by conventional manual patch-clamp techniques. This method has the potential for applications in high-throughput fluorometric imaging plate reader (FLIPR(R), Molecular Devices, Sunnyvale, CA) formats with cell lines expressing either recombinant or endogenous T-type Ca(2+) channels.
Insights
Researchers developed a new assay to screen for drugs targeting T-type calcium channels, crucial for treating disorders like epilepsy and pain. This method overcomes challenges in drug discovery by enabling functional assays for these vital channels.
Area of Science:
- Neuroscience
- Pharmacology
- Biophysics
Background:
- T-type voltage-gated Ca(2+) channels are linked to human disorders like pain, epilepsy, and cancer.
- Developing selective modulators for these channels is hindered by challenges in high-throughput screening (HTS).
- T-type Ca(2+) channels are often inactivated at typical resting membrane potentials, complicating functional assays.
Purpose of the Study:
- To describe a novel method for a fluorescence-based functional assay to identify modulators of T-type Ca(2+) channels.
- To enable the development of high-throughput screening assays for T-type Ca(2+) channel blockers.
Main Methods:
- Utilized gramicidin to control cellular membrane potential (V(m)) prior to T-type Ca(2+) channel activation.
- Manipulated ionic conditions with gramicidin to shift channels from an inactivated to a resting state.
- Activated T-type Ca(2+) channels using extracellular K(+) and measured responses via fluorescence.
Main Results:
- Successfully established a functional fluorescence-based assay for T-type Ca(2+) channel modulation.
- Demonstrated that gramicidin enables T-type Ca(2+) channels to be available for activation in HTS formats.
- Validated assay fidelity using known T-type Ca(2+) channel blockers, correlating with patch-clamp data.
Conclusions:
- The described method effectively supports functional assays for T-type Ca(2+) channel modulators.
- This approach overcomes a key hurdle in developing HTS assays for T-type Ca(2+) channel drug discovery.
- The assay is adaptable for cell lines with recombinant or endogenous T-type Ca(2+) channels in formats like FLIPR.

