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Discovery of an Insect Neuroactive Helix Ring Peptide from Ant Venom

Ants are among the most abundant terrestrial invertebrate predators on Earth. To overwhelm their prey, they employ several remarkable behavioral, physiological, and biochemical innovations, including an effective paralytic venom. Ant venoms are thus cocktails of toxins finely tuned to disrupt the ph...

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Autores principales: Barassé, Valentine, Jouvensal, Laurence, Boy, Guillaume, Billet, Arnaud, Ascoët, Steven, Lefranc, Benjamin, Leprince, Jérôme, Dejean, Alain, Lacotte, Virginie, Rahioui, Isabelle, Sivignon, Catherine, Gaget, Karen, Ribeiro Lopes, Mélanie, Calevro, Federica, Da Silva, Pedro, Loth, Karine, Paquet, Françoise, Treilhou, Michel, Bonnafé, Elsa, Touchard, Axel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10610885/
https://www.ncbi.nlm.nih.gov/pubmed/37888631
http://dx.doi.org/10.3390/toxins15100600
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author Barassé, Valentine
Jouvensal, Laurence
Boy, Guillaume
Billet, Arnaud
Ascoët, Steven
Lefranc, Benjamin
Leprince, Jérôme
Dejean, Alain
Lacotte, Virginie
Rahioui, Isabelle
Sivignon, Catherine
Gaget, Karen
Ribeiro Lopes, Mélanie
Calevro, Federica
Da Silva, Pedro
Loth, Karine
Paquet, Françoise
Treilhou, Michel
Bonnafé, Elsa
Touchard, Axel
author_facet Barassé, Valentine
Jouvensal, Laurence
Boy, Guillaume
Billet, Arnaud
Ascoët, Steven
Lefranc, Benjamin
Leprince, Jérôme
Dejean, Alain
Lacotte, Virginie
Rahioui, Isabelle
Sivignon, Catherine
Gaget, Karen
Ribeiro Lopes, Mélanie
Calevro, Federica
Da Silva, Pedro
Loth, Karine
Paquet, Françoise
Treilhou, Michel
Bonnafé, Elsa
Touchard, Axel
author_sort Barassé, Valentine
collection PubMed
description Ants are among the most abundant terrestrial invertebrate predators on Earth. To overwhelm their prey, they employ several remarkable behavioral, physiological, and biochemical innovations, including an effective paralytic venom. Ant venoms are thus cocktails of toxins finely tuned to disrupt the physiological systems of insect prey. They have received little attention yet hold great promise for the discovery of novel insecticidal molecules. To identify insect-neurotoxins from ant venoms, we screened the paralytic activity on blowflies of nine synthetic peptides previously characterized in the venom of Tetramorium bicarinatum. We selected peptide U(11), a 34-amino acid peptide, for further insecticidal, structural, and pharmacological experiments. Insecticidal assays revealed that U(11) is one of the most paralytic peptides ever reported from ant venoms against blowflies and is also capable of paralyzing honeybees. An NMR spectroscopy of U(11) uncovered a unique scaffold, featuring a compact triangular ring helix structure stabilized by a single disulfide bond. Pharmacological assays using Drosophila S2 cells demonstrated that U(11) is not cytotoxic, but suggest that it may modulate potassium conductance, which structural data seem to corroborate and will be confirmed in a future extended pharmacological investigation. The results described in this paper demonstrate that ant venom is a promising reservoir for the discovery of neuroactive insecticidal peptides.
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spelling pubmed-106108852023-10-28 Discovery of an Insect Neuroactive Helix Ring Peptide from Ant Venom Barassé, Valentine Jouvensal, Laurence Boy, Guillaume Billet, Arnaud Ascoët, Steven Lefranc, Benjamin Leprince, Jérôme Dejean, Alain Lacotte, Virginie Rahioui, Isabelle Sivignon, Catherine Gaget, Karen Ribeiro Lopes, Mélanie Calevro, Federica Da Silva, Pedro Loth, Karine Paquet, Françoise Treilhou, Michel Bonnafé, Elsa Touchard, Axel Toxins (Basel) Article Ants are among the most abundant terrestrial invertebrate predators on Earth. To overwhelm their prey, they employ several remarkable behavioral, physiological, and biochemical innovations, including an effective paralytic venom. Ant venoms are thus cocktails of toxins finely tuned to disrupt the physiological systems of insect prey. They have received little attention yet hold great promise for the discovery of novel insecticidal molecules. To identify insect-neurotoxins from ant venoms, we screened the paralytic activity on blowflies of nine synthetic peptides previously characterized in the venom of Tetramorium bicarinatum. We selected peptide U(11), a 34-amino acid peptide, for further insecticidal, structural, and pharmacological experiments. Insecticidal assays revealed that U(11) is one of the most paralytic peptides ever reported from ant venoms against blowflies and is also capable of paralyzing honeybees. An NMR spectroscopy of U(11) uncovered a unique scaffold, featuring a compact triangular ring helix structure stabilized by a single disulfide bond. Pharmacological assays using Drosophila S2 cells demonstrated that U(11) is not cytotoxic, but suggest that it may modulate potassium conductance, which structural data seem to corroborate and will be confirmed in a future extended pharmacological investigation. The results described in this paper demonstrate that ant venom is a promising reservoir for the discovery of neuroactive insecticidal peptides. MDPI 2023-10-05 /pmc/articles/PMC10610885/ /pubmed/37888631 http://dx.doi.org/10.3390/toxins15100600 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Barassé, Valentine
Jouvensal, Laurence
Boy, Guillaume
Billet, Arnaud
Ascoët, Steven
Lefranc, Benjamin
Leprince, Jérôme
Dejean, Alain
Lacotte, Virginie
Rahioui, Isabelle
Sivignon, Catherine
Gaget, Karen
Ribeiro Lopes, Mélanie
Calevro, Federica
Da Silva, Pedro
Loth, Karine
Paquet, Françoise
Treilhou, Michel
Bonnafé, Elsa
Touchard, Axel
Discovery of an Insect Neuroactive Helix Ring Peptide from Ant Venom
title Discovery of an Insect Neuroactive Helix Ring Peptide from Ant Venom
title_full Discovery of an Insect Neuroactive Helix Ring Peptide from Ant Venom
title_fullStr Discovery of an Insect Neuroactive Helix Ring Peptide from Ant Venom
title_full_unstemmed Discovery of an Insect Neuroactive Helix Ring Peptide from Ant Venom
title_short Discovery of an Insect Neuroactive Helix Ring Peptide from Ant Venom
title_sort discovery of an insect neuroactive helix ring peptide from ant venom
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10610885/
https://www.ncbi.nlm.nih.gov/pubmed/37888631
http://dx.doi.org/10.3390/toxins15100600
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