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The northward distribution of ants (Hymenoptera: Formicidae) 40 years later: revisiting Robert E. Gregg’s 1969 Subarctic collection sites in Churchill, Manitoba, Canada

Published online by Cambridge University Press:  24 August 2015

M. Alex Smith*
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Amanda Boyd
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Trevor Bringloe
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Christopher Britton-Foster
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Hayley Cahill
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Kelsey Desnoyers
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Natalie Duitshaever
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Daniel Gibson
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Stephen James
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Yurak Jeong
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Darren Kelly
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Elli Levene
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Hilary Lyttle
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Talia Masse
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Kate Pare
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Kelsie Paris
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Cassandra Russell
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Eric Scott
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Deborah Silva
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Megan Sparkes
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Kami Valkova
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
Sarah J. Adamowicz
Affiliation:
Department of Integrative Biology University of Guelph, Guelph, Ontario, Canada N1G 2W1
*
1Corresponding author (e-mail: salex@uoguelph.ca).

Abstract

In 1969, Robert E. Gregg collected five species of ants (Hymenoptera: Formicidae) in three Subarctic localities near the town of Churchill, Manitoba, Canada, which he documented in a 1972 publication in The Canadian Entomologist. To determine whether there have been any additions to the local fauna – as might be predicted to occur in response to a warming climate and increased traffic to the Port of Churchill in the intervening 40 years – we re-collected ants from the same localities in 2012. We identified the ants we collected from Gregg’s sampling sites using both traditional morphological preparations and DNA barcoding. In addition, we examined specimens from Gregg’s initial collection that are accessioned at the Field Museum of Natural History (Chicago, Illinois, United States of America). Using this integrative approach we report seven species present at the same sites Gregg sampled 40 years earlier. We conclude that the apparent increase is likely not due to any arrivals from more southerly distributed ants, but to the increased resolution provided by DNA barcodes to resident species complexes with a complicated history. We provide a brief synopsis of these results and their taxonomic context.

Type
Biodiversity & Evolution
Copyright
© Entomological Society of Canada 2015 

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Footnotes

Subject editor: Christopher Buddle

References

Blagoev, G.A., Nikolova, N.I., Sobel, C.N., Hebert, P.D., and Adamowicz, S.J. 2013. Spiders (Araneae) of Churchill, Manitoba: DNA barcodes and morphology reveal high species diversity and new Canadian records. BMC Ecology, 13: 44.Google Scholar
Brown, W.L. 1955. The ant Leptothorax muscorum (Nylander) in North America. Entomological News, 66: 4350.Google Scholar
Colwell, R.K. and Elsensohn, J.E. 2014. EstimateS turns 20: statistical estimation of species richness and shared species from samples, with non-parametric extrapolation. Ecography, 37: 609613.Google Scholar
Creighton, W.S. 1950. The ants of North America. Bulletin of the Museum of Comparative Zoology, 104: 1585.Google Scholar
Fernandez-Triana, J., Smith, M.A., Boudreault, C., Goulet, H., Hebert, P.D.N., Smith, A.C., et al. 2011. A poorly known high-latitude parasitoid wasp community: unexpected diversity and dramatic changes through time. Public Library of Science One, 6: e23719.Google Scholar
Fisher, B.L. and Cover, S.P. 2007. Ants of North America: a guide to the genera. University of California Press, Berkley California, United States of America.Google Scholar
Fisher, B.L. and Smith, M.A. 2008. A revision of Malagasy species of Anochetus Mayr and Odontomachus Latreille (Hymenoptera: Formicidae). Public Library of Science One, 3: e1787.Google Scholar
Francoeur, A. 1973. Révision taxonomique des espèces néarctiques du groupe fusca, genre Formica (Formicidae, Hymenoptera). Mémoires de la Societé Entomologique du Québec, 3: 1316.Google Scholar
Francouer, A. 1983. The ant fauna near the tree-line in northern Quebec (Formicidae, Hymenoptera). Nordicana, 47: 177180.Google Scholar
Francouer, A. 1997. Ants (Hymenoptera: Formicidae) of the Yukon. In Insects of the Yukon. Edited by H.V. Danks and J.A. Downes. Biological Survey of Canada (Terrestrial Arthropods), Ottawa, Ontario, Canada. Pp. 901910.Google Scholar
Gagnon, A. and Gough, W. 2005. Trends in the dates of ice freeze-up and breakup over Hudson Bay, Canada; 2005. Arctic, 58: 370382.Google Scholar
Gregg, R.E. 1963. The ants of Colorado. University of Colorado Press, Boulder, Colorado, United States of America.Google Scholar
Gregg, R.E. 1972. The northward distribution of ants in North America. The Canadian Entomologist, 104: 10731091.Google Scholar
Heinze, J. 1993. Life histories of subarctic ants. Arctic, 46: 354358.Google Scholar
Hurst, G.D.D. and Jiggins, F.M. 2005. Problems with mitochondrial DNA as a marker in population, phylogeographic and phylogenetic studies: the effects of inherited symbionts. Proceedings of the Royal Society B-Biological Sciences, 272: 15251534.Google Scholar
Ivanova, N.V., DeWaard, J.R., and Hebert, P.D.N. 2006. An inexpensive, automation-friendly protocol for recovering high-quality DNA. Molecular Ecology Notes, 6: 9981002.Google Scholar
Loiselle, R., Francoeur, A., Fischer, K., and Buschinger, A. 1990. Variations and taxonomic significance of the chromosome numbers in the Nearctic species of the genus Leptothorax (s.s.) (Formicidae: Hymenoptera). Caryologia, 43: 321334.Google Scholar
Ratnasingham, S. and Hebert, P.D.N. 2007. BOLD: the barcode of life data system (www.barcodinglife.org). Molecular Ecology Notes, 7: 355364.Google Scholar
Ratnasingham, S. and Hebert, P. 2013. A DNA-based registry for all animal species: the barcode index number (BIN) system. Public Library of Science One, 8: e66213. doi:66210.61371/journal.pone.0066213.Google Scholar
Renaud, A.K., Savage, J., and Adamowicz, S.J. 2012a. DNA barcoding of northern Nearctic Muscidae (Diptera) reveals high correspondence between morphological and molecular species limits. BMC Ecology, 12: 24.Google Scholar
Renaud, A.K., Savage, J., and Roughley, R. 2012b. Muscidae (Diptera) diversity in Churchill, Canada, between two time periods: evidence for limited changes since the Canadian Northern Insect Survey. The Canadian Entomologist, 144: 2951.Google Scholar
Rodriguez, J., Fernández-Triana, J., Smith, M.A., Janzen, D., Hallwachs, W., Erwin, T., et al. 2012. Extrapolations from field studies and known faunas converge on dramatically increased estimates of global microgastrine parasitoid wasp species richness (Hymenoptera: Braconidae). Insect Conservation and Diversity, 6: 530536.Google Scholar
Smith, M.A., Adamowicz, S.J., Boyd, A., Britton-Foster, C., Cahill, H., Desnoyers, K., et al. 2013. Arctic ecology [online]. GigaPan Magazine, 5. Available from http://gigapanmagazine.org/vol5/issue1/ [accessed 21 July 2015].Google Scholar
Smith, M.A., Bertrand, C., Crosby, K., Eveleigh, E., Fernandez-Triana, J., Fisher, B.L., et al. 2012. Wolbachia and DNA barcoding insects: patterns, potential, and problems. Public Library of Science One, 7: e36514.Google Scholar
Smith, M.A., Fernandez-Triana, J., Roughley, R., and Hebert, P.D.N. 2009. DNA barcode accumulation curves for understudied taxa and areas. Molecular Ecology Resources, 9: 208216.Google Scholar
Smith, M.A., Fisher, B.L., and Hebert, P.D.N. 2005. DNA barcoding for effective biodiversity assessment of a hyperdiverse arthropod group: the ants of Madagascar. Philosophical Transactions of the Royal Society B-Biological Sciences, 360: 18251834.Google Scholar
Smith, M.A., Hallwachs, W., and Janzen, D.H. 2014. Diversity and phylogenetic community structure of ants along a Costa Rican elevational gradient. Ecography, 37: 720731.Google Scholar
Smith, M.A., Rodriguez, J.J., Whitfield, J.B., Deans, A.R., Janzen, D.H., Hallwachs, W., et al. 2008. Extreme diversity of tropical parasitoid wasps exposed by iterative integration of natural history, DNA barcoding, morphology, and collections. Proceedings of the National Academy of Sciences of the United States of America, 105: 1235912364.Google Scholar
Stahlhut, J.K., Fernández-Triana, J., Adamowicz, S.J., Buck, M., Goulet, H., Hebert, P.D., et al. 2013. DNA barcoding reveals diversity of Hymenoptera and the dominance of parasitoids in a sub-arctic environment. BMC Ecology, 13: 2.Google Scholar
Timms, L.L., Bennett, A.M.R., Buddle, C.M., and Wheeler, T.A. 2013. Assessing five decades of change in a high Arctic parasitoid community. Ecography, 36: 12271235.Google Scholar
Tingley, M. and Beissinger, S. 2009. Detecting range shifts from historical species occurrences: new perspectives on old data. Trends in Ecology & Evolution, 24: 625633.Google Scholar
Woodcock, T.S., Boyle, E.E., Roughley, R.E., Kevan, P.G., Labbee, R.N., Smith, A.B.T., et al. 2013. The diversity and biogeography of the Coleoptera of Churchill: insights from DNA barcoding. BMC Ecology, 13: 40.CrossRefGoogle ScholarPubMed
Zhou, X., Adamowicz, S.J., Jacobus, L.M., DeWalt, R.E., and Hebert, P.D.N. 2009. Towards a comprehensive barcode library for arctic life – Ephemeroptera, Plecoptera, and Trichoptera of Churchill, Manitoba, Canada. Frontiers in Zoology, 6: 30.Google Scholar