Marine Drugs · 2006 · 70 citations · 141 references
EngineeringToxinologyNumerous ToxinsCellular PhysiologyNav-targeted Marine ToxinsNatural LigandsHyperpolarization (Biology)Marine PollutionIntercellular CommunicationMolecular PhysiologyBiochemistryIon ChannelsPharmacologySignal TransductionPhysiologyNeuropeptide ReceptorElectrophysiologyMarine BiologyMedicineNeuropeptides
Eukaryotic, voltage-gated sodium (NaV) channels are large membrane proteins which underlie generation and propagation of rapid electrical signals in nerve, muscle and heart. Nine different NaV receptor sites, for natural ligands and/or drugs, have been identified, based on functional analyses and site-directed mutagenesis. In the marine ecosystem, numerous toxins have evolved to disrupt NaV channel function, either by inhibition of current flow through the channels, or by modifying the activation and inactivation gating processes by which the channels open and close. These toxins function in their native environment as offensive or defensive weapons in prey capture or deterrence of predators. In composition, they range from organic molecules of varying size and complexity to peptides consisting of ~10-70 amino acids. We review the variety of known NaV-targeted marine toxins, outlining, where known, their sites of interaction with the channel protein and their functional effects. In a number of cases, these natural ligands have the potential applications as drugs in clinical settings, or as models for drug development.
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VMD: Visual molecular dynamics
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Engineering, Visual Molecular Dynamics, Molecular Biology +5
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Biological Database, Biochemistry, Structural Bioinformatics +12
Marine cyanobacteria—a prolific source of natural products
Adam M. Burja, Bernard Banaigs, Eliane Abou‐Mansour et al. · Tetrahedron · 2001 · 836 citations