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Novel Fluorescence-Based High-Throughput FLIPR Assay Utilizing Membrane-Tethered Genetic Calcium Sensors to Identify T-Type Calcium Channel Modulators.

Publication ,  Journal Article
Zhang, Y-L; Moran, SP; Allen, A; Baez-Nieto, D; Xu, Q; Wang, LA; Martenis, WE; Sacher, JR; Gale, JP; Weïwer, M; Wagner, FF; Pan, JQ
Published in: ACS Pharmacol Transl Sci
March 11, 2022

T-type voltage-gated Ca2+ channels have been implicated in many human disorders, and there has been increasing interest in developing highly selective and potent T-type Ca2+ channel modulators for potential clinical use. However, the unique biophysical properties of T-type Ca2+ channels are not conducive for developing high-throughput screening (HTS) assays to identify modulators, particularly potentiators. To illustrate, T-type Ca2+ channels are largely inactivated and unable to open to allow Ca2+ influx at -25 mV, the typical resting membrane potential of the cell lines commonly used in cellular screening assays. To address this issue, we developed cell lines that express Kir2.3 channels to hyperpolarize the membrane potential to -70 mV, thus allowing T-type channels to return to their resting state where they can be subsequently activated by membrane depolarization in the presence of extracellular KCl. Furthermore, to simplify the HTS assay and to reduce reagent cost, we stably expressed a membrane-tethered genetic calcium sensor, GCaMP6s-CAAX, that displays superior signal to the background compared to the untethered GCaMP6s or the synthetic Ca2+ sensor Fluo-4AM. Here, we describe a novel GCaMP6s-CAAX-based calcium assay utilizing a high-throughput fluorometric imaging plate reader (Molecular Devices, Sunnyvale, CA) format that can identify both activators and inhibitors of T-type Ca2+ channels. Lastly, we demonstrate the utility of this novel fluorescence-based assay to evaluate the activities of two distinct G-protein-coupled receptors, thus expanding the use of GCaMP6s-CAAX to a wide range of applications relevant for developing cellular assays in drug discovery.

Duke Scholars

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Published In

ACS Pharmacol Transl Sci

DOI

EISSN

2575-9108

Publication Date

March 11, 2022

Volume

5

Issue

3

Start / End Page

156 / 168

Location

United States

Related Subject Headings

  • 3214 Pharmacology and pharmaceutical sciences
  • 3205 Medical biochemistry and metabolomics
  • 3101 Biochemistry and cell biology
 

Citation

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Zhang, Y.-L., Moran, S. P., Allen, A., Baez-Nieto, D., Xu, Q., Wang, L. A., … Pan, J. Q. (2022). Novel Fluorescence-Based High-Throughput FLIPR Assay Utilizing Membrane-Tethered Genetic Calcium Sensors to Identify T-Type Calcium Channel Modulators. ACS Pharmacol Transl Sci, 5(3), 156–168. https://doi.org/10.1021/acsptsci.1c00233
Zhang, Yan-Ling, Sean P. Moran, Andrew Allen, David Baez-Nieto, Qihong Xu, Lei A. Wang, William E. Martenis, et al. “Novel Fluorescence-Based High-Throughput FLIPR Assay Utilizing Membrane-Tethered Genetic Calcium Sensors to Identify T-Type Calcium Channel Modulators.ACS Pharmacol Transl Sci 5, no. 3 (March 11, 2022): 156–68. https://doi.org/10.1021/acsptsci.1c00233.
Zhang Y-L, Moran SP, Allen A, Baez-Nieto D, Xu Q, Wang LA, et al. Novel Fluorescence-Based High-Throughput FLIPR Assay Utilizing Membrane-Tethered Genetic Calcium Sensors to Identify T-Type Calcium Channel Modulators. ACS Pharmacol Transl Sci. 2022 Mar 11;5(3):156–68.
Zhang, Yan-Ling, et al. “Novel Fluorescence-Based High-Throughput FLIPR Assay Utilizing Membrane-Tethered Genetic Calcium Sensors to Identify T-Type Calcium Channel Modulators.ACS Pharmacol Transl Sci, vol. 5, no. 3, Mar. 2022, pp. 156–68. Pubmed, doi:10.1021/acsptsci.1c00233.
Zhang Y-L, Moran SP, Allen A, Baez-Nieto D, Xu Q, Wang LA, Martenis WE, Sacher JR, Gale JP, Weïwer M, Wagner FF, Pan JQ. Novel Fluorescence-Based High-Throughput FLIPR Assay Utilizing Membrane-Tethered Genetic Calcium Sensors to Identify T-Type Calcium Channel Modulators. ACS Pharmacol Transl Sci. 2022 Mar 11;5(3):156–168.

Published In

ACS Pharmacol Transl Sci

DOI

EISSN

2575-9108

Publication Date

March 11, 2022

Volume

5

Issue

3

Start / End Page

156 / 168

Location

United States

Related Subject Headings

  • 3214 Pharmacology and pharmaceutical sciences
  • 3205 Medical biochemistry and metabolomics
  • 3101 Biochemistry and cell biology