Related Experiment Video
Updated: Jun 11, 2026

Single-Cell Calcium Imaging for Studying the Activation of Calcium Ion Channels
Published on: December 13, 2024
Inhibition of the activation pathway of the T-type calcium channel Ca(V)3.1 by ProTxII
Gabrielle B Edgerton1, Kenneth M Blumenthal, Dorothy A Hanck
1Committee on Neurobiology, University of Chicago, 5841 S. Maryland Avenue, MC6094, Chicago, IL 60637, USA.
Abstract:
Toxins have been used extensively to probe the gating mechanisms of voltage-gated ion channels. Relatively few such tools are available to study the low-voltage activated T-type Ca channels, which underlie thalamic neuron firing and affect sleep, resistance to seizures, and weight gain. Here we show that ProTxII, a peptide toxin recently isolated from the venom of the tarantula spider Thrixopelma pruriens, dose-dependently inhibited Ca(V)3.1 causing a decrease in current (81.6% +/- 3.1% at -30 mV in 5 microM toxin) and a positive shift in the voltage range of activation (+34.5 mV +/- 4.4 mV). Toxin-modified currents were slower to activate and faster to deactivate and they displayed a longer lag in the onset of current, i.e. the Cole-Moore shift, consistent with the inhibition of gating transitions along the activation pathway, particularly the final opening transition. Single-channel current amplitude and total gating charge were unaffected by toxin, ruling out a change in ion flux or channel dropout as mechanisms for the decrease in macroscopic conductance. A positive shift in the voltage range of gating charge movement (+30.6 mV +/- 2.6 mV shift in the voltage of half maximal charge movement in the presence of 5 microM toxin) confirmed that ProTxII-induced gating perturbations in this channel occur at the level of the voltage sensors, and kinetic modeling based on these findings suggested that reductions in current magnitude could be largely accounted for by kinetic perturbations of activation.
Insights
ProTxII toxin inhibits low-voltage activated T-type calcium (CaV3.1) channels. This peptide toxin affects channel gating, impacting neuronal firing, sleep, and seizure resistance.
Area of Science:
- Neuroscience
- Pharmacology
- Biophysics
Background:
- Voltage-gated ion channels are crucial for neuronal function.
- T-type calcium channels (CaV3.1) play key roles in thalamic neuron firing, sleep, and epilepsy.
- Few toxins are available to study T-type calcium channel gating.
Purpose of the Study:
- To investigate ProTxII as a pharmacological tool for studying CaV3.1 channel gating.
- To characterize the effects of ProTxII on CaV3.1 channel function.
Main Methods:
- Electrophysiological recordings of CaV3.1 channels in the presence of varying ProTxII concentrations.
- Analysis of current inhibition, voltage-dependence of activation, and gating kinetics.
- Kinetic modeling to interpret toxin effects.
Main Results:
- ProTxII dose-dependently inhibited CaV3.1 currents.
- ProTxII shifted the activation voltage range positively and altered activation/deactivation kinetics.
- ProTxII affected voltage sensor movement but not single-channel amplitude or gating charge.
Conclusions:
- ProTxII is a valuable toxin for probing CaV3.1 channel gating mechanisms.
- The toxin primarily perturbs voltage sensor function and activation gating transitions.
- ProTxII's effects on CaV3.1 channels have implications for understanding neuronal excitability and related disorders.
More Related Videos
08:27Expression and Purification of the Human Lipid-sensitive Cation Channel TRPC3 for Structural Determination by Single-particle Cryo-electron Microscopy
Published on: January 7, 2019
10:46Mechanical Stimulation-induced Calcium Wave Propagation in Cell Monolayers: The Example of Bovine Corneal Endothelial Cells
Published on: July 16, 2013
Related Concept Videos
Antihypertensive Drugs: Action of Calcium Channel Blockers
Calmodulin-dependent Signaling
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...
Ligand-Gated Ion Channel Receptor: Gating Mechanism
G-Protein Gated Ion Channels
Sensory organs,...
Depolarizing Blockers: Mechanism of Action
Succinylcholine is the most commonly used depolarizing blocker. Chemically, it constitutes two molecules of acetylcholine joined together by an acetate methyl group. They act on the receptors in the same way as acetylcholine. Because succinylcholine...
Antiarrhythmic Drugs: Class IV Agents as Calcium Channel Blockers
Verapamil, a calcium channel blocker, inhibits calcium movement across myocardial cell membranes and vascular smooth muscle. This results in the dilation of coronary and...