Venomous Secretions from Marine Snails of the Terebridae Family Target Acetylcholine Receptors
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A. Kurz | J. Tytgat | A. Nicke | D. Mebs | S. Peigneur | C. Wunder | S. Kauferstein | C. Melaun | Y. Kendel
[1] C. Cruaud,et al. Macroevolution of venom apparatus innovations in auger snails (Gastropoda; Conoidea; Terebridae). , 2012, Molecular phylogenetics and evolution.
[2] M. Oliverio,et al. Accessing novel conoidean venoms: Biodiverse lumun-lumun marine communities, an untapped biological and toxinological resource. , 2010, Toxicon : official journal of the International Society on Toxinology.
[3] N. Puillandre,et al. The Terebridae and teretoxins: Combining phylogeny and anatomy for concerted discovery of bioactive compounds , 2010, BMC chemical biology.
[4] E. Bermingham,et al. Correlating Molecular Phylogeny with Venom Apparatus Occurrence in Panamic Auger Snails (Terebridae) , 2009, PloS one.
[5] B. Olivera,et al. Peptide pal9a from the venom of the turrid snail Polystira albida from the Gulf of Mexico: Purification, characterization, and comparison with P-conotoxin-like (framework IX) conoidean peptides , 2009, Peptides.
[6] J. Biggs,et al. Alpha-conopeptides specifically expressed in the salivary gland of Conus pulicarius. , 2008, Toxicon : official journal of the International Society on Toxinology.
[7] A. Couloux,et al. Starting to unravel the toxoglossan knot: molecular phylogeny of the "turrids" (Neogastropoda: Conoidea). , 2008, Molecular Phylogenetics and Evolution.
[8] B. Olivera,et al. A rapidly diverging superfamily of peptide toxins in venomous Gemmula species. , 2008, Toxicon : official journal of the International Society on Toxinology.
[9] M. Quik,et al. Subtype-selective conopeptides targeted to nicotinic receptors:Concerted discovery and biomedical applications , 2008, Channels.
[10] J. Stenflo,et al. Venomous auger snail Hastula (Impages) hectica (Linnaeus, 1758): molecular phylogeny, foregut anatomy and comparative toxinology. , 2007, Journal of experimental zoology. Part B, Molecular and developmental evolution.
[11] B. Olivera,et al. Diversity of the neurotoxic Conus peptides: a model for concerted pharmacological discovery. , 2007, Molecular interventions.
[12] B. Olivera,et al. Conus Peptides: Biodiversity-based Discovery and Exogenomics* , 2006, Journal of Biological Chemistry.
[13] B. Olivera,et al. Genes Expressed in a Turrid Venom Duct: Divergence and Similarity to Conotoxins , 2006, Journal of Molecular Evolution.
[14] R. Lewis,et al. Alpha-conotoxins as tools for the elucidation of structure and function of neuronal nicotinic acetylcholine receptor subtypes. , 2004, European journal of biochemistry.
[15] B. Olivera,et al. A novel structural class of toxins: the methionine-rich peptides from the venoms of turrid marine snails (Mollusca, Conoidea). , 2004, Toxicon : official journal of the International Society on Toxinology.
[16] B. Olivera,et al. Conus venoms: a rich source of novel ion channel-targeted peptides. , 2004, Physiological reviews.
[17] B. Olivera,et al. The augertoxins: biochemical characterization of venom components from the toxoglossate gastropod Terebra subulata. , 2003, Toxicon : official journal of the International Society on Toxinology.
[18] John D. Taylor,et al. Foregut anatomy, feeding mechanisms, relationships and classification of the Conoidea (=Toxoglossa) (Gastropoda) , 1993 .
[19] B. Olivera,et al. Peptide toxins from Conus geographus venom. , 1981, The Journal of biological chemistry.