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.

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.

Related Concept Videos

Antihypertensive Drugs: Action of Calcium Channel Blockers01:18

Antihypertensive Drugs: Action of Calcium Channel Blockers

Calcium ions are essential to contract smooth muscle cells in blood vessels. They enter these cells through voltage-dependent calcium channels, specifically L-type calcium channels in the cell membrane. These L-type calcium channels are integral to the excitation-contraction coupling process in smooth muscle. When a stimulus is received by smooth muscle cells, their membrane depolarizes. This alteration in membrane potential instigates the opening of L-type calcium channels. As a result,...
Calmodulin-dependent Signaling01:16

Calmodulin-dependent Signaling

Calmodulin (CaM) is a calcium-binding protein in eukaryotes that controls various calcium-regulated cellular processes. It has four calcium-binding sites that bind calcium to form the calcium-calmodulin ( Ca2+-CaM) complex. GPCR stimulation increases the calcium levels in the cells that bind to CaM and induces a conformational change.
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 Mechanism01:30

Ligand-Gated Ion Channel Receptor: Gating Mechanism

Ligand-gated ion channels are transmembrane proteins that play a vital role in intercellular communication and functions of the nervous system. They allow the influx of ions across the membrane once the neurotransmitter binds, allowing the subsequent transmission of electrical excitation across the neurons. Other ligand-gated ion channels, like the γ-aminobutyric acid (GABA) receptor, permit anions like chloride into the cells on the binding of the GABA molecule. Their entry into the cell...
G-Protein Gated Ion Channels01:21

G-Protein Gated Ion Channels

GPCRs are primarily responsible for our sense of smell, taste, and vision.  The binding of a sensory stimulus activates GPCR to stimulate effector proteins, many of which are ion channels in the sensory organs. GPCRs modulate the opening and closing of the target ion channels either directly by binding them, or by releasing second messengers that activate these channels. As ions move across the membrane, the membrane potential is altered, which induces an appropriate response.
Sensory organs,...
Depolarizing Blockers: Mechanism of Action01:28

Depolarizing Blockers: Mechanism of Action

Depolarizing blockers act on skeletal muscle fibers' membranes and induce their depolarization. Most depolarizing blockers have two quaternary N+ atoms that bind the nicotinic acetylcholine receptors and cause neuromuscular blockade within minutes.
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 Blockers01:20

Antiarrhythmic Drugs: Class IV Agents as Calcium Channel Blockers

Class IV antiarrhythmic drugs, such as verapamil and diltiazem, block calcium channels. They primarily affect the heart, slowing the conduction in calcium-dependent tissues like the SA and AV nodes. These drugs manage reentrant supraventricular tachycardia (SVT) and reduce ventricular rate in atrial flutter/fibrillation.
Verapamil, a calcium channel blocker, inhibits calcium movement across myocardial cell membranes and vascular smooth muscle. This results in the dilation of coronary and...