Cargando…

A comprehensive portrait of the venom of the giant red bull ant, Myrmecia gulosa, reveals a hyperdiverse hymenopteran toxin gene family

Ants (Hymenoptera: Formicidae) are diverse and ubiquitous, and their ability to sting is familiar to many of us. However, their venoms remain largely unstudied. We provide the first comprehensive characterization of a polypeptidic ant venom, that of the giant red bull ant, Myrmecia gulosa. We reveal...

Descripción completa

Detalles Bibliográficos
Autores principales: Robinson, Samuel D., Mueller, Alexander, Clayton, Daniel, Starobova, Hana, Hamilton, Brett R., Payne, Richard J., Vetter, Irina, King, Glenn F., Undheim, Eivind A. B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6135544/
https://www.ncbi.nlm.nih.gov/pubmed/30214940
http://dx.doi.org/10.1126/sciadv.aau4640
_version_ 1783354844295200768
author Robinson, Samuel D.
Mueller, Alexander
Clayton, Daniel
Starobova, Hana
Hamilton, Brett R.
Payne, Richard J.
Vetter, Irina
King, Glenn F.
Undheim, Eivind A. B.
author_facet Robinson, Samuel D.
Mueller, Alexander
Clayton, Daniel
Starobova, Hana
Hamilton, Brett R.
Payne, Richard J.
Vetter, Irina
King, Glenn F.
Undheim, Eivind A. B.
author_sort Robinson, Samuel D.
collection PubMed
description Ants (Hymenoptera: Formicidae) are diverse and ubiquitous, and their ability to sting is familiar to many of us. However, their venoms remain largely unstudied. We provide the first comprehensive characterization of a polypeptidic ant venom, that of the giant red bull ant, Myrmecia gulosa. We reveal a suite of novel peptides with a range of posttranslational modifications, including disulfide bond formation, dimerization, and glycosylation. One venom peptide has sequence features consistent with an epidermal growth factor fold, while the remaining peptides have features suggestive of a capacity to form amphipathic helices. We show that these peptides are derived from what appears to be a single, pharmacologically diverse, gene superfamily (aculeatoxins) that includes most venom peptides previously reported from the aculeate Hymenoptera. Two aculeatoxins purified from the venom were found to be capable of activating mammalian sensory neurons, consistent with the capacity to produce pain but via distinct mechanisms of action. Further investigation of the major venom peptide MIITX(1)-Mg1a revealed that it can also incapacitate arthropods, indicative of dual utility in both defense and predation. MIITX(1)-Mg1a accomplishes these functions by generating a leak in membrane ion conductance, which alters membrane potential and triggers neuronal depolarization. Our results provide the first insights into the evolution of the major toxin gene superfamily of the aculeate Hymenoptera and provide a new paradigm in the functional evolution of toxins from animal venoms.
format Online
Article
Text
id pubmed-6135544
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher American Association for the Advancement of Science
record_format MEDLINE/PubMed
spelling pubmed-61355442018-09-13 A comprehensive portrait of the venom of the giant red bull ant, Myrmecia gulosa, reveals a hyperdiverse hymenopteran toxin gene family Robinson, Samuel D. Mueller, Alexander Clayton, Daniel Starobova, Hana Hamilton, Brett R. Payne, Richard J. Vetter, Irina King, Glenn F. Undheim, Eivind A. B. Sci Adv Research Articles Ants (Hymenoptera: Formicidae) are diverse and ubiquitous, and their ability to sting is familiar to many of us. However, their venoms remain largely unstudied. We provide the first comprehensive characterization of a polypeptidic ant venom, that of the giant red bull ant, Myrmecia gulosa. We reveal a suite of novel peptides with a range of posttranslational modifications, including disulfide bond formation, dimerization, and glycosylation. One venom peptide has sequence features consistent with an epidermal growth factor fold, while the remaining peptides have features suggestive of a capacity to form amphipathic helices. We show that these peptides are derived from what appears to be a single, pharmacologically diverse, gene superfamily (aculeatoxins) that includes most venom peptides previously reported from the aculeate Hymenoptera. Two aculeatoxins purified from the venom were found to be capable of activating mammalian sensory neurons, consistent with the capacity to produce pain but via distinct mechanisms of action. Further investigation of the major venom peptide MIITX(1)-Mg1a revealed that it can also incapacitate arthropods, indicative of dual utility in both defense and predation. MIITX(1)-Mg1a accomplishes these functions by generating a leak in membrane ion conductance, which alters membrane potential and triggers neuronal depolarization. Our results provide the first insights into the evolution of the major toxin gene superfamily of the aculeate Hymenoptera and provide a new paradigm in the functional evolution of toxins from animal venoms. American Association for the Advancement of Science 2018-09-12 /pmc/articles/PMC6135544/ /pubmed/30214940 http://dx.doi.org/10.1126/sciadv.aau4640 Text en Copyright © 2018 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC). http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license (http://creativecommons.org/licenses/by-nc/4.0/) , which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.
spellingShingle Research Articles
Robinson, Samuel D.
Mueller, Alexander
Clayton, Daniel
Starobova, Hana
Hamilton, Brett R.
Payne, Richard J.
Vetter, Irina
King, Glenn F.
Undheim, Eivind A. B.
A comprehensive portrait of the venom of the giant red bull ant, Myrmecia gulosa, reveals a hyperdiverse hymenopteran toxin gene family
title A comprehensive portrait of the venom of the giant red bull ant, Myrmecia gulosa, reveals a hyperdiverse hymenopteran toxin gene family
title_full A comprehensive portrait of the venom of the giant red bull ant, Myrmecia gulosa, reveals a hyperdiverse hymenopteran toxin gene family
title_fullStr A comprehensive portrait of the venom of the giant red bull ant, Myrmecia gulosa, reveals a hyperdiverse hymenopteran toxin gene family
title_full_unstemmed A comprehensive portrait of the venom of the giant red bull ant, Myrmecia gulosa, reveals a hyperdiverse hymenopteran toxin gene family
title_short A comprehensive portrait of the venom of the giant red bull ant, Myrmecia gulosa, reveals a hyperdiverse hymenopteran toxin gene family
title_sort comprehensive portrait of the venom of the giant red bull ant, myrmecia gulosa, reveals a hyperdiverse hymenopteran toxin gene family
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6135544/
https://www.ncbi.nlm.nih.gov/pubmed/30214940
http://dx.doi.org/10.1126/sciadv.aau4640
work_keys_str_mv AT robinsonsamueld acomprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT muelleralexander acomprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT claytondaniel acomprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT starobovahana acomprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT hamiltonbrettr acomprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT paynerichardj acomprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT vetteririna acomprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT kingglennf acomprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT undheimeivindab acomprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT robinsonsamueld comprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT muelleralexander comprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT claytondaniel comprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT starobovahana comprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT hamiltonbrettr comprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT paynerichardj comprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT vetteririna comprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT kingglennf comprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily
AT undheimeivindab comprehensiveportraitofthevenomofthegiantredbullantmyrmeciagulosarevealsahyperdiversehymenopterantoxingenefamily