V102862 (Co 102862): a potent, broad-spectrum state-dependent blocker of mammalian voltage-gated sodium channels
- 1 March 2005
- journal article
- research article
- Published by Wiley in British Journal of Pharmacology
- Vol. 144 (6) , 801-812
- https://doi.org/10.1038/sj.bjp.0706058
Abstract
1. 4-(4-Fluorophenoxy)benzaldehyde semicarbazone (V102862) was initially described as an orally active anticonvulsant with robust activity in a variety of rodent models of epilepsy. The mechanism of action was not known. We used whole-cell patch-clamp techniques to study the effects of V102862 on native and recombinant mammalian voltage-gated Na+ channels. 2. V102862 blocked Na+ currents (I(Na)) in acutely dissociated cultured rat hippocampal neurons. Potency increased with membrane depolarization, suggesting a state-dependent mechanism of inhibition. There was no significant effect on the voltage dependence of activation of I(Na). 3. The dissociation constant for the inactivated state (K(I)) was approximately 0.6 microM, whereas the dissociation constant for the resting state (K(R)) was >15 microM. 4. The binding to inactivated channels was slow, requiring a few seconds to reach steady state at -80 mV. 5. The mechanism of inhibition was characterized in more detail using human embryonic kidney-293 cells stably expressing rat brain type IIA Na+ (rNa(v)1.2) channels, a major Na+ channel alpha subunit in rat hippocampal neurons. Similar to hippocampal neurons, V102862 was a potent state-dependent blocker of rNa(v)1.2 channels with a K(I) of approximately 0.4 microM and K(R) approximately 30 microM. V102862 binding to inactivated channels was relatively slow (k(+) approximately = 1.7 microM(-1) s(-1)). V102862 shifted the steady-state availability curve in the hyperpolarizing direction and significantly retarded recovery of Na+ channels from inactivation. 6. These results suggest that inhibition of voltage-gated Na+ channels is a major mechanism underlying the anticonvulsant properties of V102862. Moreover, understanding the biophysics of the interaction may prove to be useful in designing a new generation of potent Na+ channel blocker therapeutics.Keywords
This publication has 33 references indexed in Scilit:
- From Ionic Currents to Molecular MechanismsPublished by Elsevier ,2000
- Characterization of lamotrigine inhibition of Na+ channels in rat hippocampal neuronesBritish Journal of Pharmacology, 1997
- Primary structure and functional expression of the beta 1 subunit of the rat brain sodium channelScience, 1992
- Efficient expression of rat brain type IIA Na+ channel α subunits in a somatic cell lineNeuron, 1992
- Molecular Mechanisms of Local AnesthesiaAnesthesiology, 1990
- Functional Properties of Rat Brain Sodium Channels Expressed in a Somatic Cell LineScience, 1990
- Common modes of drug action on Na+ channels: local anesthetics, antiarrhythmics and anticonvulsantsTrends in Pharmacological Sciences, 1987
- Antiarrhythmic Agents: The Modulated Receptor Mechanism of Action of Sodium and Calcium Channel-Blocking DrugsAnnual Review of Pharmacology and Toxicology, 1984
- Lidocaine block of cardiac sodium channels.The Journal of general physiology, 1983
- Concentration of Carbamazepine (Tegretol®) in Serum and in Cerebrospinal Fluid in Patients with EpilepsyEpilepsia, 1973