Related Experiment Video
Updated: May 6, 2026

Author Spotlight: Translational Applications of Stimulated SFEMG in Rodent Models
Published on: March 8, 2024
Neuromuscular blocking activity of pinnatoxins E, F and G
Shane D Hellyer1, Andrew I Selwood, Lesley Rhodes
1Department of Pharmacology and Toxicology, University of Otago School of Medical Sciences, Dunedin, New Zealand.
Abstract:
Pinnatoxins are produced by dinoflagellates and belong to the cyclic imine family of toxins. They are fast-acting and highly toxic when administered in vivo in rodent bioassays, causing death by respiratory depression within minutes. Studies have revealed that some cyclic imine toxins cause their toxicity by antagonizing both muscle type and heteromeric and homomeric neuronal nicotinic acetylcholine receptors (nAChRs). Pinnatoxins E, F and G all display potent toxicity in in vivo bioassays, with symptoms of toxicity similar to other cyclic imine toxins. However, very little work has been done on the mechanism of action of these pinnatoxin isomers. Thus the aim of the current study was to investigate the rank order of potency and mechanism of action of pinnatoxins E, F and G. The effects of pinnatoxin E, F and G on in vitro rat hemidiaphragm preparations were investigated using twitch tension and electrophysiological techniques to determine the effects of these toxins on cholinergic transmission at the neuromuscular junction. Pinnatoxins E, F and G all produced concentration-dependent reductions in the nerve evoked twitch response of the rat hemidiaphragm, with IC50 values ranging from 11 to 53 nM and a rank order of potency of F > G > E. Only complete washout of pinnatoxin E was evident, with pinnatoxins F and G displaying slow and incomplete washout profiles. Pinnatoxins F and G also reduced the amplitudes of spontaneous miniature endplate potentials and evoked endplate potentials at the neuromuscular junction, without affecting miniature endplate potential frequency or the resting membrane potential of the muscle fibres. These results show that pinnatoxins E, F and G are all potent neuromuscular blocking agents and cause toxicity by acting as antagonists at muscle type nicotinic acetylcholine receptors.
Insights
Pinnatoxins E, F, and G are potent marine toxins that block neuromuscular transmission by acting as nicotinic acetylcholine receptor antagonists. These cyclic imine toxins cause significant muscle weakness and respiratory depression.
Area of Science:
- Marine biology
- Neuroscience
- Toxicology
Background:
- Pinnatoxins are cyclic imine toxins from dinoflagellates, known for rapid toxicity and respiratory depression.
- Some cyclic imines antagonize nicotinic acetylcholine receptors (nAChRs), but the mechanism for pinnatoxin isomers E, F, and G is poorly understood.
Purpose of the Study:
- To investigate the rank order of potency and mechanism of action of pinnatoxins E, F, and G.
- To determine the effects of these toxins on cholinergic transmission at the neuromuscular junction.
Main Methods:
- In vitro rat hemidiaphragm preparations were used.
- Twitch tension and electrophysiological techniques were employed to assess toxin effects.
- Concentration-dependent responses, washout profiles, and effects on miniature endplate potentials were analyzed.
Main Results:
- Pinnatoxins E, F, and G reduced nerve-evoked twitch responses in a concentration-dependent manner (IC50: 11-53 nM).
- The rank order of potency was determined as F > G > E.
- Pinnatoxins F and G exhibited slow and incomplete washout, reduced miniature endplate potential amplitudes, but did not affect frequency or resting membrane potential.
Conclusions:
- Pinnatoxins E, F, and G are potent neuromuscular blocking agents.
- These toxins exert their toxicity by acting as antagonists at muscle-type nicotinic acetylcholine receptors.
More Related Videos
Related Concept Videos
Nondepolarizing (Competitive) Neuromuscular Blockers: Mechanism of Action
Competitive antagonists prevent acetylcholine from binding to its receptor, inhibiting membrane depolarization. Without conformational changes or intrinsic...
Nondepolarizing (Competitive) Neuromuscular Blockers: Pharmacological Actions
Although all competitive neuromuscular blockers are designed...
Nondepolarizing (Competitive) Neuromuscular Blockers: Pharmacokinetics
Instead, they are transported by the blood to different tissues. Muscles with a greater blood supply (arteries) and blood flow receive more...
Neuromuscular Junction And Blockade
Depolarizing Blockers: Mechanism of Action
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...
Drugs Acting on Autonomic Ganglia: Blockers

