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Updated: Oct 26, 2025

Single-Cell Calcium Imaging for Studying the Activation of Calcium Ion Channels
Published on: December 13, 2024
Functional Interaction between Transient Receptor Potential V4 Channel and Neuronal Calcium Sensor 1 and the Effects
Julio C Sánchez1, Barbara E Ehrlich2
1Laboratory of Cell Physiology, Faculty of Health Sciences, Universidad Tecnológica de Pereira, Pereira, Colombia (J.C.S.), and Departments of Pharmacology and Cellular and Molecular Physiology, Yale University, New Haven, Connecticut (B.E.E.).
Abstract:
Neuronal calcium sensor 1 (NCS1), a calcium-binding protein, and transient receptor potential V4 (TRPV4), a plasma membrane calcium channel, are fundamental in the regulation of calcium homeostasis. The interactions of these proteins and their regulation by paclitaxel (PTX) were investigated using biochemical, pharmacological, and electrophysiological approaches in both a breast cancer epithelial cell model and a neuronal model. TRPV4 and NCS1 reciprocally immunoprecipitated each other, suggesting that they make up a signaling complex. The functional consequence of this physical association was that TRPV4 currents increased with increased NCS1 expression. Calcium fluxes through TRPV4 correlated with the magnitude of TRPV4 currents, and these calcium fluxes depended on NCS1 expression levels. Exposure to PTX amplified the acute effects of TRPV4 expression, currents, and calcium fluxes but decreased the expression of NCS1. These findings augment the understanding of the properties of TRPV4, the role of NCS1 in the regulation of TRPV4, and the cellular mechanisms of PTX-induced neuropathy. SIGNIFICANCE STATEMENT: TRPV4 and NCS1 physically and functionally interact. Increased expression of NCS1 enhances TRPV4-dependent currents, which are further amplified by treatment with the chemotherapeutic drug paclitaxel, an effect associated with adverse effects of chemotherapy, including neuropathy.
Insights
Neuronal calcium sensor 1 (NCS1) and TRPV4 channels physically interact to regulate calcium. Paclitaxel (PTX) amplifies TRPV4 activity while decreasing NCS1, potentially explaining PTX-induced neuropathy.
Area of Science:
- Neuroscience
- Cell Biology
- Pharmacology
Background:
- Neuronal calcium sensor 1 (NCS1) and transient receptor potential V4 (TRPV4) are key regulators of calcium homeostasis.
- Understanding their interaction is crucial for cellular function and disease mechanisms.
Purpose of the Study:
- To investigate the interaction between NCS1 and TRPV4.
- To determine how paclitaxel (PTX) affects this interaction and cellular calcium regulation.
- To elucidate the role of NCS1 in TRPV4 channel function.
Main Methods:
- Biochemical assays (reciprocal immunoprecipitation).
- Pharmacological treatments with PTX.
- Electrophysiological recordings of TRPV4 currents.
- Calcium imaging to measure calcium fluxes.
- Cellular models (breast cancer epithelial and neuronal cells).
Main Results:
- NCS1 and TRPV4 form a signaling complex.
- Increased NCS1 expression enhances TRPV4 currents and calcium fluxes.
- PTX amplifies TRPV4 activity but decreases NCS1 expression.
- These findings link NCS1, TRPV4, and PTX to cellular mechanisms.
Conclusions:
- NCS1 and TRPV4 physically and functionally interact.
- NCS1 positively regulates TRPV4 channel activity.
- PTX's effects on NCS1 and TRPV4 may underlie chemotherapy-induced neuropathy.
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