Mechanism of ivermectin facilitation of human P2X4 receptor channels

Avi Priel1, Shai D Silberberg

  • 1Department of Life Sciences Ben-Gurion, University of the Negev, P.O. Box 653, Beer-Sheva 84105, Israel.

Insights

Ivermectin (IVM) enhances human P2X(4) receptor channel activity by binding to separate sites, increasing current amplitude and slowing deactivation. This antiparasitic agent modulates channel kinetics, suggesting potential therapeutic applications.

Area of Science:

  • Pharmacology
  • Molecular Biology
  • Ion Channel Physiology

Background:

  • Ivermectin (IVM) is a broad-spectrum antiparasitic drug with known effects on ion channels.
  • Previous studies indicated IVM augments macroscopic currents through rat P2X(4) receptors.
  • The precise mechanisms of IVM action on human P2X(4) receptors remain to be fully elucidated.

Purpose of the Study:

  • To investigate the effects of Ivermectin (IVM) on human P2X(4) (hP2X(4)) receptor channel function.
  • To characterize the binding sites and kinetic modulations induced by IVM on hP2X(4) channels.
  • To elucidate the molecular mechanisms underlying IVM's potentiation of hP2X(4) receptor activity.

Main Methods:

  • Utilized whole-cell and cell-attached patch clamp electrophysiology to record membrane currents.
  • Investigated the effects of varying Ivermectin concentrations on hP2X(4) channels stably expressed in HEK293 cells.
  • Analyzed ATP concentration-response relationships and channel gating kinetics.

Main Results:

  • Ivermectin applied extracellularly increased maximal ATP-activated current and slowed current deactivation, suggesting binding to distinct sites.
  • A high-affinity site (EC(50) 0.25 microM) enhanced current amplitude by reducing desensitization.
  • A lower-affinity site (EC(50) 2 microM) slowed deactivation by stabilizing the open channel conformation, observed as prolonged bursts in single-channel recordings.

Conclusions:

  • Ivermectin modulates human P2X(4) receptor activity through at least two distinct binding sites.
  • IVM's effects include increased current amplitude via reduced desensitization and prolonged channel opening.
  • These findings provide mechanistic insights into Ivermectin's interaction with P2X(4) channels, relevant for its pharmacological applications.

Related Concept Videos

Mechanically-gated Ion Channels01:12

Mechanically-gated Ion Channels

Mechanically-gated ion channels are proteins found in eukaryotic and prokaryotic cell membranes that open in response to mechanical stress. Tension, compression, swelling, and shear stress can alter the conformation of the protein, opening a transmembrane channel that allows the passage of ions for signal transmission. In eukaryotes, mechanically-gated channels are distributed in several regions like the neurons, lungs, skin, bladder, and heart, where they play critical roles in numerous...
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,...
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...
Indirect-Acting Cholinergic Agonists: Mechanism of Action01:18

Indirect-Acting Cholinergic Agonists: Mechanism of Action

Indirect-acting cholinergic agonists work by interacting with an enzyme called acetylcholinesterase (AChE) in the synaptic cleft. They can be reversible or irreversible inhibitors and have different effects on the enzyme.
Reversible inhibitors like edrophonium bind to a specific part of the enzyme called the anionic catalytic site. They form noncovalent bonds, which means they are not strongly attached to the enzyme. This creates a temporary and less stable enzyme–inhibitor complex, leading to...
Nondepolarizing (Competitive) Neuromuscular Blockers: Mechanism of Action01:17

Nondepolarizing (Competitive) Neuromuscular Blockers: Mechanism of Action

Nondepolarizing neuromuscular blockers induce paralysis by competitively blocking nicotinic acetylcholine receptors at the muscle end plate. Examples include pancuronium, mivacurium, vecuronium, and rocuronium. These quaternary ammonium derivatives are administered intravenously, are poorly absorbed, and are excreted via the kidneys.
Competitive antagonists prevent acetylcholine from binding to its receptor, inhibiting membrane depolarization. Without conformational changes or intrinsic...
Anthelminthic Agents01:15

Anthelminthic Agents

Anthelmintic drugs differ significantly from antiparasitic therapies targeting protozoa, primarily due to differences in parasite biology. Whereas most protozoal treatments act on proliferating cells, anthelmintics are typically directed against mature, nonproliferative helminths. The therapeutic approach considers the helminth's reliance on neuromuscular coordination, glucose metabolism, and microtubular integrity for survival, reproduction, and localization within the host. Most anthelmintics...