The role of modified teeth in the function of prolonged bites in Hierophis viridiflavus (Serpentes: Colubridae)

Authors

  • Alessandro Paterna OPHIS Museo Paleontologico e Centro Erpetologico

DOI:

https://doi.org/10.11606/issn.2316-9079.v22i2p121-130

Keywords:

Duvernoy’s glands, Modifed fangs, Opisthoglyphous, Western Whipsnake

Abstract

Analysis of the maxillary, palatine, pterygoid, and dentary bones of the Western Whipsnake, Hierophis viridiflavus carbonarius, revealed the presenceof grooves and ridges in the teeth on the four dentiferous bones. Enlarged and modified rear teeth were found on the posterior maxillaries, separated by alveolar diastema and aligned differently from the anterior maxillary teeth. In both live and dissected specimens, Duvernoy’s gland, associated with the production of toxins, surrounds the rear maxillary teeth, which deliver the secretions produced by the gland. These characters, plus theinfliction of prolonged bites, facilitate the subduing of prey. The morphology of the palatomaxillary arch places H. viridiflavus in the group of opisthoglyphous colubroids, whose modified fangs facilitate the inoculation of secretions, considered a “primitive form of venom.” Other species of large sympatric colubroids were also examined, and some analogous structures were observed.

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References

Di Nicola, M. R., L. Cavigioli, L. Luiselli, and F. Andreone. 2021. Anfbi & Rettili d’Italia - Edizione Aggiornata. Latina. Edizioni Belvedere. 576 pp.

Dutto, M., I. Ineich, F. Serre-Collet, M. Goyfon, and R. Bédry. 2015. Trois cas de morsures du Colubridé Hierophis viridifavus (Lacépède, 1789). Bulletin de la Société Herpétologique de France 156: 55–62.

Filippi, E., M. Capula, and L. Luiselli. 2003. Dietary shifts in the Western Whip Snake Coluber viridifavus Lecépède, 1789 of the small Mediterranean island of Ustica (Squamata: Serpentes: Colubridae). Herpetozoa 16: 61–66.

Fry, B. G., H. Scheib, L. van Weerd, B. A. Young, J. McNaughtan, S. F. R. Ramjan, R. E. Poelmann, and J. A. Norman. 2008. Evolution of an arsenal: structural and functional diversifcation of the venom system in the advanced snakes. Molecular & Cellular Proteomics 2008: 215–246.

Gardner-Thorpe, C. 1967. Snakebite poisoning. British Medical Journal 26: 558.

Gläßer-Trobisch, A. and D. Trobisch. 2008. Bissunfall bei einer Ringelnatterfütterung. Elaphe 16: 59–61.

Jackson, K. 2003. The evolution of venom-delivery systems in snakes. Zoological Journal of the Linnean Society 137: 337-354.

Kardong, K. V. 1982. The evolution of the venom apparatus in snakes from colubrids to viperdis & elapids. Memórias do Institudo de Butantan 46: 105–118.

Kardong, K. V. and P. A. Lavin-Murcio. 1993. Venom delivery of snakes as high-pressure and low-pressure systems. Copeia 1993: 644–650.

Kazemi, S. M., M. H. Jahan-Mahin, T. Mohammadian-Kalat, M. S. Hosseinzadeh, and S. A. Weinstein. 2023. Local envenoming by the coinsnake or Asian racer, Hemorrhois nummifer and mountain racer or leopard snake, Hemorrhois ravergieri (Serpentes: Colubridae, Colubrinae) in Iran: a reminder of the importance of species identifcation in the medical management of snakebites. Toxicon 226: 107070.

Kreiner, G. 2007. The Snakes of Europe. Frankfurt am Main. Edition Chimaira. 317 pp.

Lumsden, N. G., B. G. Fry, R. Manjunatha Kini, and W. C. Hodgson. 2004. In vitro neuromuscular activity of ‘colubrid’ venoms: clinical and evolutionary implications. Toxicon 43: 819–827.

Malik, G. M. 1995. Snake bites in adults from the Asir region of southern Saudi Arabia. American Journal of Tropical Medicine and Hygiene 52: 314–317.

Mamonov, G. 1977. Case report of envenomation by the mountain racer, Coluber ravergieri in USSR. The Snake 9: 27–28.

Mondino, A., J. Crovadore, F. Lefort, and S. Ursenbacher. 2022. Impact of invading species on biodiversity: diet study of the green whip snake’s (Hierophis viridifavus, L. 1789) in Switzerland. Global Ecology and Conservation 38: e02239.

Nagy Z. T., R. Lawson, U. Joger, and M. Wink. 2004. Molecular systematics of racers, whipsnakes and relatives (Reptilia: Colubridae) using mitochondrial and nuclear markers. Journal of Zoological Systematics and Evolutionary Research 42:223–233.

Oliveira, L., R. R. Scartozzoni, S. M. Almeida-Santos, C. Jared, M. M. Antoniazzi, and M. G. Salomão. 2016. Morphology of Duvernoy’s glands and maxillary teeth and a possible function of the Duvernoy’s gland secretion in Helicops modestus Günther, 1861 (Serpentes: Xenodontinae). South American Journal of Herpetology 11: 54–65.

Ovadia, M., 1984. Embryonic development of Duvernoy’s gland in the snake, Natrix tessellata (Colubridae). Copeia 1984: 516–521.

Paterna, A. 2015. Morphological traits of hatchlings of the Western Whip snake Hierophis viridifavus (Lacépède, 1789) from a central Italian population. Russian Journal of Herpetology 22: 179–187.

Paterna, A. 2023. Intraspecifc oophagy in Hierophis viridifavus (Serpentes: Colubridae) during oviposition in a controlled environment. Phyllomedusa 22: 29–35.

Phisalix, M. 1922. Animaux Venimeux et Venins. Volume 2. Paris. Masson et Cie. 1512 pp.

Phisalix, M. and F. Caius. 1916. Propriétés venimeuses de la salive parotidienne chez des Colubridæ aglyphes des genres Tropidonotus Kuhl, Zamenis et Helicops Wagler. Bulletin du Muséum National d’Histoire Naturelle 22: 213–218.

Racca, L., A. Villa, L. C. M. Wencker, M. Camaiti, H. A. Blain, and M. Delfno M. 2020. Skull osteology and osteological phylogeny of the Western Whip snake Hierophis viridifavus (Squamata, Colubridae). Journal of Morphology 281: 808–836.

Ranayhossaini, D. J. 2010. An Investigation of the Hemotoxicity of the Duvernoy’s Gland Secretion of the Northern Water Snake (Nerodia sipedon). Pennsylvania State University Schreyer Honors College. 26 pp.

Rodriguez-Robles, J. A. 1994. Are the Duvernoy’s gland secretions of colubrid snakes venoms? Journal of Herpetology 28: 388–390.

Satora, L. 2004. Bites by the grass snake Natrix natrix. Veterinaryand Human Toxicology 46: 334–334.

Sindaco R., G. Doria, E. Razzetti, and F. Bernini. 2006.

Atlante degli Anfbi e dei Rettili d’Italia. Firenze. Societas Herpetologica Italica. Edizioni Polistampa. 792 pp.

Taub, A. M. 1967. Comparative histological studies on Duvernoy’s gland of colubrid snakes. Bulletin of the American Museum of Natural History 138: 1–50.

Weinstein, S. A, J. White, D. E. Keyler, and D. A. Warrell. 2013. Non front-fanged colubroid snakes: a current evidence based analysis of medical signifcance. Toxicon 69: 103–13.

Weinstein, S. A., D. A. Warrell, J. White, and D. E. Keyler. 2011. “Venomous” Bites from Non Venomous Snakes. A Critical Analysis of Risk and Management of “Colubrid” Snake Bites. Waltham. Elsevier Inc. 364 pp.

Weinstein, S. A. and K. V. Kardong. 1994. Properties of Duvernoy’s secretions from opisthoglyphous and aglyphous colubrid snakes. Toxicon 32: 1161–1185.

Young, B. A. and K. V. Kardong. 1996. Dentitional surface features in snakes (Reptilia: Serpentes). AmphibiaReptilia 17: 261–276.

Zalisko, E. J. and Kardong, K. V. 1992. Histology and histochemistry of the Duvernoy’s gland of the brown tree snake Boiga irreguluria” (Colubridae). Copeia 1992: 791–798.

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Published

2023-12-15

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How to Cite

Paterna, A. (2023). The role of modified teeth in the function of prolonged bites in Hierophis viridiflavus (Serpentes: Colubridae). Phyllomedusa: Journal of Herpetology, 22(2), 121-130. https://doi.org/10.11606/issn.2316-9079.v22i2p121-130