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The Snake with the Scorpion’s Sting: Novel Three-Finger Toxin Sodium Channel Activators from the Venom of the Long-Glanded Blue Coral Snake (Calliophis bivirgatus)

Millions of years of evolution have fine-tuned the ability of venom peptides to rapidly incapacitate both prey and potential predators. Toxicofera reptiles are characterized by serous-secreting mandibular or maxillary glands with heightened levels of protein expression. These glands are the core ana...

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Autores principales: Yang, Daryl C., Deuis, Jennifer R., Dashevsky, Daniel, Dobson, James, Jackson, Timothy N. W., Brust, Andreas, Xie, Bing, Koludarov, Ivan, Debono, Jordan, Hendrikx, Iwan, Hodgson, Wayne C., Josh, Peter, Nouwens, Amanda, Baillie, Gregory J., Bruxner, Timothy J. C., Alewood, Paul F., Lim, Kelvin Kok Peng, Frank, Nathaniel, Vetter, Irina, Fry, Bryan G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5086663/
https://www.ncbi.nlm.nih.gov/pubmed/27763551
http://dx.doi.org/10.3390/toxins8100303
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author Yang, Daryl C.
Deuis, Jennifer R.
Dashevsky, Daniel
Dobson, James
Jackson, Timothy N. W.
Brust, Andreas
Xie, Bing
Koludarov, Ivan
Debono, Jordan
Hendrikx, Iwan
Hodgson, Wayne C.
Josh, Peter
Nouwens, Amanda
Baillie, Gregory J.
Bruxner, Timothy J. C.
Alewood, Paul F.
Lim, Kelvin Kok Peng
Frank, Nathaniel
Vetter, Irina
Fry, Bryan G.
author_facet Yang, Daryl C.
Deuis, Jennifer R.
Dashevsky, Daniel
Dobson, James
Jackson, Timothy N. W.
Brust, Andreas
Xie, Bing
Koludarov, Ivan
Debono, Jordan
Hendrikx, Iwan
Hodgson, Wayne C.
Josh, Peter
Nouwens, Amanda
Baillie, Gregory J.
Bruxner, Timothy J. C.
Alewood, Paul F.
Lim, Kelvin Kok Peng
Frank, Nathaniel
Vetter, Irina
Fry, Bryan G.
author_sort Yang, Daryl C.
collection PubMed
description Millions of years of evolution have fine-tuned the ability of venom peptides to rapidly incapacitate both prey and potential predators. Toxicofera reptiles are characterized by serous-secreting mandibular or maxillary glands with heightened levels of protein expression. These glands are the core anatomical components of the toxicoferan venom system, which exists in myriad points along an evolutionary continuum. Neofunctionalisation of toxins is facilitated by positive selection at functional hotspots on the ancestral protein and venom proteins have undergone dynamic diversification in helodermatid and varanid lizards as well as advanced snakes. A spectacular point on the venom system continuum is the long-glanded blue coral snake (Calliophis bivirgatus), a specialist feeder that preys on fast moving, venomous snakes which have both a high likelihood of prey escape but also represent significant danger to the predator itself. The maxillary venom glands of C. bivirgatus extend one quarter of the snake’s body length and nestle within the rib cavity. Despite the snake’s notoriety its venom has remained largely unstudied. Here we show that the venom uniquely produces spastic paralysis, in contrast to the flaccid paralysis typically produced by neurotoxic snake venoms. The toxin responsible, which we have called calliotoxin (δ-elapitoxin-Cb1a), is a three-finger toxin (3FTx). Calliotoxin shifts the voltage-dependence of Na(V)1.4 activation to more hyperpolarised potentials, inhibits inactivation, and produces large ramp currents, consistent with its profound effects on contractile force in an isolated skeletal muscle preparation. Voltage-gated sodium channels (Na(V)) are a particularly attractive pharmacological target as they are involved in almost all physiological processes including action potential generation and conduction. Accordingly, venom peptides that interfere with Na(V) function provide a key defensive and predatory advantage to a range of invertebrate venomous species including cone snails, scorpions, spiders, and anemones. Enhanced activation or delayed inactivation of sodium channels by toxins is associated with the extremely rapid onset of tetanic/excitatory paralysis in envenomed prey animals. A strong selection pressure exists for the evolution of such toxins where there is a high chance of prey escape. However, despite their prevalence in other venomous species, toxins causing delay of sodium channel inhibition have never previously been described in vertebrate venoms. Here we show that Na(V) modulators, convergent with those of invertebrates, have evolved in the venom of the long-glanded coral snake. Calliotoxin represents a functionally novel class of 3FTx and a structurally novel class of Na(V) toxins that will provide significant insights into the pharmacology and physiology of Na(V). The toxin represents a remarkable case of functional convergence between invertebrate and vertebrate venom systems in response to similar selection pressures. These results underscore the dynamic evolution of the Toxicofera reptile system and reinforces the value of using evolution as a roadmap for biodiscovery.
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spelling pubmed-50866632016-11-02 The Snake with the Scorpion’s Sting: Novel Three-Finger Toxin Sodium Channel Activators from the Venom of the Long-Glanded Blue Coral Snake (Calliophis bivirgatus) Yang, Daryl C. Deuis, Jennifer R. Dashevsky, Daniel Dobson, James Jackson, Timothy N. W. Brust, Andreas Xie, Bing Koludarov, Ivan Debono, Jordan Hendrikx, Iwan Hodgson, Wayne C. Josh, Peter Nouwens, Amanda Baillie, Gregory J. Bruxner, Timothy J. C. Alewood, Paul F. Lim, Kelvin Kok Peng Frank, Nathaniel Vetter, Irina Fry, Bryan G. Toxins (Basel) Article Millions of years of evolution have fine-tuned the ability of venom peptides to rapidly incapacitate both prey and potential predators. Toxicofera reptiles are characterized by serous-secreting mandibular or maxillary glands with heightened levels of protein expression. These glands are the core anatomical components of the toxicoferan venom system, which exists in myriad points along an evolutionary continuum. Neofunctionalisation of toxins is facilitated by positive selection at functional hotspots on the ancestral protein and venom proteins have undergone dynamic diversification in helodermatid and varanid lizards as well as advanced snakes. A spectacular point on the venom system continuum is the long-glanded blue coral snake (Calliophis bivirgatus), a specialist feeder that preys on fast moving, venomous snakes which have both a high likelihood of prey escape but also represent significant danger to the predator itself. The maxillary venom glands of C. bivirgatus extend one quarter of the snake’s body length and nestle within the rib cavity. Despite the snake’s notoriety its venom has remained largely unstudied. Here we show that the venom uniquely produces spastic paralysis, in contrast to the flaccid paralysis typically produced by neurotoxic snake venoms. The toxin responsible, which we have called calliotoxin (δ-elapitoxin-Cb1a), is a three-finger toxin (3FTx). Calliotoxin shifts the voltage-dependence of Na(V)1.4 activation to more hyperpolarised potentials, inhibits inactivation, and produces large ramp currents, consistent with its profound effects on contractile force in an isolated skeletal muscle preparation. Voltage-gated sodium channels (Na(V)) are a particularly attractive pharmacological target as they are involved in almost all physiological processes including action potential generation and conduction. Accordingly, venom peptides that interfere with Na(V) function provide a key defensive and predatory advantage to a range of invertebrate venomous species including cone snails, scorpions, spiders, and anemones. Enhanced activation or delayed inactivation of sodium channels by toxins is associated with the extremely rapid onset of tetanic/excitatory paralysis in envenomed prey animals. A strong selection pressure exists for the evolution of such toxins where there is a high chance of prey escape. However, despite their prevalence in other venomous species, toxins causing delay of sodium channel inhibition have never previously been described in vertebrate venoms. Here we show that Na(V) modulators, convergent with those of invertebrates, have evolved in the venom of the long-glanded coral snake. Calliotoxin represents a functionally novel class of 3FTx and a structurally novel class of Na(V) toxins that will provide significant insights into the pharmacology and physiology of Na(V). The toxin represents a remarkable case of functional convergence between invertebrate and vertebrate venom systems in response to similar selection pressures. These results underscore the dynamic evolution of the Toxicofera reptile system and reinforces the value of using evolution as a roadmap for biodiscovery. MDPI 2016-10-18 /pmc/articles/PMC5086663/ /pubmed/27763551 http://dx.doi.org/10.3390/toxins8100303 Text en © 2016 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yang, Daryl C.
Deuis, Jennifer R.
Dashevsky, Daniel
Dobson, James
Jackson, Timothy N. W.
Brust, Andreas
Xie, Bing
Koludarov, Ivan
Debono, Jordan
Hendrikx, Iwan
Hodgson, Wayne C.
Josh, Peter
Nouwens, Amanda
Baillie, Gregory J.
Bruxner, Timothy J. C.
Alewood, Paul F.
Lim, Kelvin Kok Peng
Frank, Nathaniel
Vetter, Irina
Fry, Bryan G.
The Snake with the Scorpion’s Sting: Novel Three-Finger Toxin Sodium Channel Activators from the Venom of the Long-Glanded Blue Coral Snake (Calliophis bivirgatus)
title The Snake with the Scorpion’s Sting: Novel Three-Finger Toxin Sodium Channel Activators from the Venom of the Long-Glanded Blue Coral Snake (Calliophis bivirgatus)
title_full The Snake with the Scorpion’s Sting: Novel Three-Finger Toxin Sodium Channel Activators from the Venom of the Long-Glanded Blue Coral Snake (Calliophis bivirgatus)
title_fullStr The Snake with the Scorpion’s Sting: Novel Three-Finger Toxin Sodium Channel Activators from the Venom of the Long-Glanded Blue Coral Snake (Calliophis bivirgatus)
title_full_unstemmed The Snake with the Scorpion’s Sting: Novel Three-Finger Toxin Sodium Channel Activators from the Venom of the Long-Glanded Blue Coral Snake (Calliophis bivirgatus)
title_short The Snake with the Scorpion’s Sting: Novel Three-Finger Toxin Sodium Channel Activators from the Venom of the Long-Glanded Blue Coral Snake (Calliophis bivirgatus)
title_sort snake with the scorpion’s sting: novel three-finger toxin sodium channel activators from the venom of the long-glanded blue coral snake (calliophis bivirgatus)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5086663/
https://www.ncbi.nlm.nih.gov/pubmed/27763551
http://dx.doi.org/10.3390/toxins8100303
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