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Published on: May 19, 2009
Mechanism of ivermectin facilitation of human P2X4 receptor channels
1Department of Life Sciences Ben-Gurion, University of the Negev, P.O. Box 653, Beer-Sheva 84105, Israel.
Abstract:
Ivermectin (IVM), a widely used antiparasitic agent in human and veterinary medicine, was recently shown to augment macroscopic currents through rat P2X(4) receptor channels. In the present study, the effects of IVM on the human P2X(4) (hP2X(4)) receptor channel stably transfected in HEK293 cells were investigated by recording membrane currents using the patch clamp technique. In whole-cell recordings, IVM (< or =10 microM) applied from outside the cell (but not from inside) increased the maximum current activated by ATP, and slowed the rate of current deactivation. These two phenomena likely result from the binding of IVM to separate sites. A higher affinity site (EC(50) 0.25 microM) increased the maximal current activated by saturating concentrations of ATP without significantly changing the rate of current deactivation or the EC(50) and Hill slope of the ATP concentration-response relationship. A lower affinity site (EC(50) 2 microM) slowed the rate of current deactivation, and increased the apparent affinity for ATP. In cell-attached patch recordings, P2X(4) receptor channels exhibited complex kinetics, with multiple components in both the open and shut distributions. IVM (0.3 microM) increased the number of openings per burst, without significantly changing the mean open or mean shut time within a burst. At higher concentrations (1.5 microM) of IVM, two additional open time components of long duration were observed that gave rise to long-lasting bursts of channel activity. Together, the results suggest that the binding of IVM to the higher affinity site increases current amplitude by reducing channel desensitization, whereas the binding of IVM to the lower affinity site slows the deactivation of the current predominantly by stabilizing the open conformation of the channel.
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.
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