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Antillatoxin is a marine cyanobacterial toxin that potently activates voltage-gated sodium channels
1Department of Physiology and Pharmacology, College of Veterinary Medicine, University of Georgia, Athens, GA 30602-7389, USA.
Abstract:
Antillatoxin (ATX) is a lipopeptide derived from the pantropical marine cyanobacterium Lyngbya majuscula. ATX is neurotoxic in primary cultures of rat cerebellar granule cells, and this neuronal death is prevented by either N-methyl-d-aspartate (NMDA) receptor antagonists or tetrodotoxin. To further explore the potential interaction of ATX with voltage-gated sodium channels, we assessed the influence of tetrodotoxin on ATX-induced Ca2+ influx in cerebellar granule cells. The rapid increase in intracellular Ca2+ produced by ATX (100 nM) was antagonized in a concentration-dependent manner by tetrodotoxin. Additional, more direct, evidence for an interaction with voltage-gated sodium channels was derived from the ATX-induced allosteric enhancement of [3H]batrachotoxin binding to neurotoxin site 2 of the alpha subunit of the sodium channel. ATX, moreover, produced a strong synergistic stimulation of [3H]batrachotoxin binding in combination with brevetoxin, which is a ligand for neurotoxin site 5 on the voltage-gated sodium channel. Positive allosteric interactions were not observed between ATX and either alpha-scorpion toxin or the pyrethroid deltamethrin. That ATX interaction with voltage-gated sodium channels produces a gain of function was demonstrated by the concentration-dependent and tetrodotoxin-sensitive stimulation of 22Na+ influx in cerebellar granule cells exposed to ATX. Together these results demonstrate that the lipopeptide ATX is an activator of voltage-gated sodium channels. The neurotoxic actions of ATX therefore resemble those of brevetoxins that produce neural insult through depolarization-evoked Na+ load, glutamate release, relief of Mg2+ block of NMDA receptors, and Ca2+ influx.
Insights
Antillatoxin (ATX), a marine cyanobacteria toxin, activates voltage-gated sodium channels. This leads to neurotoxicity by increasing sodium influx, similar to brevetoxins, and is blocked by tetrodotoxin.
Area of Science:
- Neuroscience
- Marine Biology
- Biochemistry
Background:
- Antillatoxin (ATX) is a lipopeptide from Lyngbya majuscula.
- ATX exhibits neurotoxicity in rat cerebellar granule cells.
- Neuronal death induced by ATX is mitigated by N-methyl-d-aspartate (NMDA) receptor antagonists and tetrodotoxin.
Purpose of the Study:
- To investigate the interaction of Antillatoxin (ATX) with voltage-gated sodium channels.
- To elucidate the mechanism of ATX-induced neurotoxicity.
Main Methods:
- Assessed tetrodotoxin's influence on ATX-induced Ca2+ influx in cerebellar granule cells.
- Examined ATX's effect on [3H]batrachotoxin binding to sodium channels.
- Measured ATX-induced 22Na+ influx in cerebellar granule cells.
Main Results:
- Tetrodotoxin concentration-dependently antagonized ATX-induced Ca2+ influx.
- ATX allosterically enhanced [3H]batrachotoxin binding to sodium channels.
- ATX stimulated 22Na+ influx in a tetrodotoxin-sensitive manner, indicating channel activation.
Conclusions:
- Antillatoxin (ATX) is a potent activator of voltage-gated sodium channels.
- ATX neurotoxicity results from sodium channel activation, leading to depolarization and excitotoxicity.
- The mechanism of ATX neurotoxicity parallels that of brevetoxins.
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