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Updated: Jun 19, 2026

Fluorescent Calcium Imaging and Subsequent In Situ Hybridization for Neuronal Precursor Characterization in Xenopus laevis
Published on: February 18, 2020
Characterization of endogenous calcium responses in neuronal cell lines
Irina Vetter1, Richard J Lewis
1Institute for Molecular Bioscience, The University of Queensland, St Lucia, Queensland 4072, Australia. i.vetter@uq.edu.au
Abstract:
An increasing number of putative therapeutic targets have been identified in recent years for the treatment of neuronal pathophysiologies including pain, epilepsy, stroke and schizophrenia. Many of these targets signal through calcium (Ca(2+)), either by directly facilitating Ca(2+) influx through an ion channel, or through activation of G proteins that couple to intracellular Ca(2+) stores or voltage-gated Ca(2+) channels. Immortalized neuronal cell lines are widely used models to study neuropharmacology. However, systematic pharmacological characterization of the receptors and ion channels expressed in these cell lines is lacking. In this study, we systematically assessed endogenous Ca(2+) signaling in response to addition of agonists at potential therapeutic targets in a range of cell lines of neuronal origin (ND7/23, SH-SY5Y, 50B11, F11 and Neuro2A cells) as well as HEK293 cells, a cell line commonly used for over-expression of receptors and ion channels. This study revealed a remarkable diversity of endogenous Ca(2+) responses in these cell lines, with one or more cell lines responding to addition of trypsin, bradykinin, ATP, nicotine, acetylcholine, histamine and neurotensin. Subtype specificity of these responses was inferred from agonist potency and the effect of receptor subtype specific antagonist. Surprisingly, HEK293 and SH-SY5Y cells responded to the largest number of agonists with potential roles in neuronal signaling. These findings have implications for the heterologous expression of neuronal receptors and ion channels in these cell lines, and highlight the potential of neuron-derived cell lines for the study of a range of endogenously expressed receptors and ion channels that signal through Ca(2+).
Insights
Researchers characterized calcium signaling in neuronal cell lines, finding diverse responses to various agonists. HEK293 and SH-SY5Y cells showed the most varied calcium signaling, highlighting their potential for studying neuronal targets.
Area of Science:
- Neuroscience
- Pharmacology
- Cell Biology
Background:
- Numerous therapeutic targets for neurological disorders like pain and epilepsy involve calcium (Ca2+) signaling.
- Immortalized neuronal cell lines are crucial for neuropharmacology research but lack systematic characterization of their endogenous receptors and ion channels.
Purpose of the Study:
- To systematically assess endogenous calcium (Ca2+) signaling in response to agonists in various neuronal and HEK293 cell lines.
- To identify cell lines with diverse and specific endogenous Ca2+ responses for studying neuropharmacology.
Main Methods:
- Assessed endogenous Ca2+ signaling in ND7/23, SH-SY5Y, 50B11, F11, Neuro2A, and HEK293 cells.
- Administered various agonists (trypsin, bradykinin, ATP, nicotine, acetylcholine, histamine, neurotensin) to stimulate Ca2+ responses.
- Inferred subtype specificity using agonist potency and receptor antagonist data.
Main Results:
- Observed significant diversity in endogenous Ca2+ signaling responses across the tested cell lines.
- HEK293 and SH-SY5Y cells exhibited responses to the greatest number of agonists relevant to neuronal signaling.
- Identified specific agonist responses in different cell lines, indicating the presence of functional endogenous receptors and ion channels.
Conclusions:
- Neuron-derived cell lines display a wide range of endogenous Ca2+ signaling pathways.
- HEK293 and SH-SY5Y cells are particularly valuable models for studying endogenously expressed neuronal receptors and ion channels.
- Findings support the use of these cell lines for pharmacological characterization and drug discovery targeting Ca2+-mediated pathways.

