Related Experiment Video
Updated: Mar 15, 2026

A Simple and Inexpensive Method for Determining Cold Sensitivity and Adaptation in Mice
Published on: March 17, 2015
Privileged crosstalk between TRPV1 channels and mitochondrial calcium shuttling machinery controls nociception
Iulia I Nita1, Yaki Caspi2, Sagi Gudes2
1Department of Physiology and Cell Biology, Faculty of Health Sciences, Ben-Gurion University of the Negev, 84105, Israel.
Abstract:
The nociceptive noxious heat-activated receptor - TRPV1, conducts calcium and sodium, thus producing a depolarizing receptor potential, leading to activation of nociceptive neurons. TRPV1-mediated calcium and sodium influx is negatively modulated by calcium, via calcium-dependent desensitization of TRPV1 channels. A mitochondrial Ca2+ uniporter - MCU, controls mitochondrial Ca2+ entry while a sodium/calcium transporter - NCLX shapes calcium and sodium transients by mediating sodium entry into and removing calcium from the mitochondria. The functional interplay between TRPV1, MCU and NCLX, in controlling the cytosolic and mitochondrial calcium and sodium transients and subsequently the nociceptive excitability, is poorly understood. Here, we used cytosolic and mitochondrial fluorescent calcium and sodium imaging together with electrophysiological recordings of TRPV1-induced currents in HEK293T cells and nociceptor-like dissociated rat dorsal root ganglion neurons, while modulating NCLX or MCU expression using specific small interfering RNA (siNCLX). We show that the propagation of the TRPV1-induced cytosolic calcium and sodium fluxes into mitochondria is dependent on coordinated activity of NCLX and MCU. Thus, knocking-down of NCLX triggers down regulation of MCU dependent mitochondrial Ca2+ uptake. This in turn decreases rate and amplitude of TRPV1-mediated cytosolic calcium, which inhibits capsaicin-induced inward current and neuronal firing. TRPV1-mediated currents were fully rescued by intracellular inclusion of the fast calcium chelator BAPTA. Finally, NCLX controls capsaicin-induced cell death, by supporting massive mitochondrial Ca2+ shuttling. Altogether, our results suggest that NCLX, by regulating cytosolic and mitochondrial ionic transients, modulates calcium-dependent desensitization of TRPV1 channels, thereby, controlling nociceptive signaling.
Insights
The sodium/calcium exchanger (NCLX) regulates mitochondrial calcium uptake, influencing TRPV1 channel activity and nociceptive neuron firing. NCLX controls pain signaling by modulating calcium-dependent desensitization of TRPV1 channels.
Area of Science:
- Neuroscience
- Molecular Biology
- Biophysics
Background:
- The transient receptor potential vanilloid 1 (TRPV1) channel mediates nociception by conducting calcium and sodium ions.
- Calcium influx through TRPV1 desensitizes the channel, a process modulated by mitochondrial calcium handling via the mitochondrial calcium uniporter (MCU) and the sodium/calcium exchanger (NCLX).
- The precise interplay between TRPV1, MCU, and NCLX in regulating cellular and mitochondrial ion transients and nociceptive excitability remains unclear.
Purpose of the Study:
- To elucidate the functional relationship between TRPV1, MCU, and NCLX in controlling cytosolic and mitochondrial calcium and sodium dynamics.
- To investigate how NCLX and MCU coordinated activity impacts TRPV1-mediated nociceptive signaling and cell death.
Main Methods:
- Utilized cytosolic and mitochondrial fluorescent calcium and sodium imaging in HEK293T cells and rat dorsal root ganglion neurons.
- Employed electrophysiological recordings to assess TRPV1-induced currents.
- Modulated NCLX and MCU expression using small interfering RNA (siNCLX).
Main Results:
- TRPV1-induced calcium and sodium flux into mitochondria depends on the coordinated action of NCLX and MCU.
- NCLX knockdown reduced mitochondrial calcium uptake via MCU, decreasing TRPV1-mediated cytosolic calcium and inhibiting capsaicin-induced currents and neuronal firing.
- TRPV1-mediated currents were rescued by the calcium chelator BAPTA.
- NCLX was found to control capsaicin-induced cell death through massive mitochondrial calcium shuttling.
Conclusions:
- NCLX plays a critical role in regulating cytosolic and mitochondrial ionic transients.
- NCLX modulates calcium-dependent desensitization of TRPV1 channels, thereby controlling nociceptive signaling.
- Targeting NCLX may offer a novel strategy for managing pain.
Related Concept Videos
Mechanically-gated Ion Channels
Mechanically-gated Ion Channels
Ligand-Gated Ion Channel Receptor: Gating Mechanism
Nociception
Thermosensation
Feedback Regulation of Calcium Concentration
Various transmembrane receptors, such as G protein-coupled receptors (GPCRs), elicit a response to extracellular signals by increasing cytosolic calcium. Activated GPCRs...

