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2014 | 16 | 1 |

Tytuł artykułu

Identification and characterization of swarming sites used by bats in Nova Scotia, Canada

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
For bats that are year-round residents of temperate areas, underground openings such as caves and abandoned mines are critical resources in winter as hibernacula, and in autumn for swarming behaviours (mating, socialization, etc.). Like many parts of the world, Nova Scotia, Canada, has many underground openings that have not been surveyed for bats. The feature(s) that affect the suitability of these sites for hibernation or swarming is not known. As such, it is not possible to predict which ones are used by local bats (Myotis lucifugus, Myotis septentrionalis and Perimyotis subflavus). Because it was not safe to enter the sites to conduct hibernation counts, our goal was to relate bat activity at the entrance of underground openings during swarming to quantifiable external metrics and to pre-existing data on internal site characteristics. Specifically, our objectives were to 1) identify abandoned mines and caves that are used by bats for swarming and 2) quantitatively characterize factors which best differentiate between underground openings that are used for swarming, and those that are not. We assumed that sites used by bats for swarming were likely also used for hibernation. Acoustic and/or trapping surveys were conducted at 17 abandoned mines and eight caves in Nova Scotia, five of which were previously known to be hibernacula. Results suggest that at least 12 of the 25 sites were swarming sites (including seven newly identified sites). Logistic regression analysis of nine a priori selected models indicated that internal chamber length was the best predictor of swarming activity. Two external variables, degree of shelter at entrance and total length of rivers in landscape, were also important predictors. These variables have the potential to be used as indicators to identify swarming sites at other sites in eastern North America. The swarming sites identified in Nova Scotia should be targeted for monitoring in light of the devastating impacts that white-nose syndrome is having on North American bats.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

16

Numer

1

Opis fizyczny

p.109-116,fig.,ref.

Twórcy

autor
  • School for Resource and Environmental Studies, Dalhousie University; Kenneth C. Rowe Management Bldg, 6100 University Avenue, Suite 5010, P.O. Box 15000, Halifax NS, B3H 4R2, Canada
  • Department of Biology, Saint Mary's University, 923 Robie Street, Halifax NS, B3H 3C3, Canada

Bibliografia

  • 1. J. Berkova , and H. Zukal . 2010. Cave visitation by bats: effects of climatic factors. Journal of Zoology (London), 280: 387–395. Google Scholar
  • 2. D. Blehert 2012. Fungal disease and the developing story of bat white-nose syndrome. PLoS Pathogens, 8: e1002779. Google Scholar
  • 3. D. Blehert , A. Hicks , M. Behr , C. Meteyer , B. Berlowskizier , and E. Buckles . 2009. Bat white-nose syndrome: an emerging fungal pathogen? Science, 323: 227. Google Scholar
  • 4. V. Brack 2007. Temperatures and locations used by hibernating bats, including Myotis sodalis (Indiana bat), in a limestone mine: implications for conservation and management. Environmental Management, 40: 739–746. Google Scholar
  • 5. J. Briggler , and J. Prather . 2003. Seasonal use and selection of caves by the eastern pipistrelle bat (Pipistrellus subflavus). American Midland Naturalist, 149: 406–412. Google Scholar
  • 6. H. G. Broders , G. M. Quinn , and G. J. Forbes . 2003. Species status, and the spatial and temporal patterns of activity of bats in southwest Nova Scotia, Canada. Northeastern Naturalist, 10: 383–398. Google Scholar
  • 7. H. Broders , G. Forbes , S. Woodley , and I. Thompson . 2006. Range extent and stand selection for roosting and foraging in forest-dwelling northern long-eared bats and little brown bats in the Greater Fundy Ecosystem, New Brunswick. Jour nal of Wildlife Management, 70: 1174–1184. Google Scholar
  • 8. R. Brooks 2009. Habitat-associated and temporal patterns of bat activity in a diverse forest landscape of southern New England, USA. Biodiversity and Conservation, 18: 529. Google Scholar
  • 9. K. P. Burnham , and D. R. Anderson . 2002. Model selection and multimodel inference: a practical information-theoretic approach, 2nd edition. Springer-Verlag, New York, 488 pp. Google Scholar
  • 10. M. Caceres , and R. Barclay . 2000. Myotis septentrionalis. Mammalian Species, 1–4. Google Scholar
  • 11. P. M. Cryan , and R. M. Barclay . 2009. Causes of bat fatilities at wind turbines: hypothesis and predictions. Journal of Mammalogy, 90: 1330–1340. Google Scholar
  • 12. D. S. Davis , and S. Browne . 1996. Natural history of Nova Scotia. Volume 1: Topics and habitats. Nova Scotia Museum, Halifax, 513 pp. Google Scholar
  • 13. W. H. Davis , and H. B. Hitchcock . 1965. Biology and migration of the bat, Myotis lucifugus, in New England. Journal of Mammalogy, 46: 296–313. Google Scholar
  • 14. M. B. Fenton 1969. Summer activity of Myotis lucifugus (Chiroptera: Vespertilionidae) at hibernacula in Ontario and Que bec. Canadian Journal of Zoology, 47: 597–602. Google Scholar
  • 15. M. B. Fenton , and R. M. R. Barclay . 1980. Myotis lucifugus. Mammalian Species, 142: 1–8. Google Scholar
  • 16. W. F. Frick , J. F. Pollock , A. C. Hicks , K. E. Langwig , D. S. Reynolds , G. G. Turner , C. M. Butchkoski , and T. H. Kunz . 2010. An emerging disease causes regional population collapse of a common North American bat species. Science, 329: 679–682. Google Scholar
  • 17. J. Furmankiewicz , and J. D. Altringham . 2007. Genetic structure in a swarming brown long-eared bat (Plecotus auritus) population: evidence for mating at swarming sites. Conservation Genetics, 8: 913. Google Scholar
  • 18. A. M. Glover , and J. D. Altringham . 2008. Cave selection and use by swarming bat species. Biological Conservation, 141: 1493–1504. Google Scholar
  • 19. J. Hall , and F. J. Brenner . 1968. Summer netting of bats at a cave in Pennsylvania. Journal of Mammalogy, 49: 779–781. Google Scholar
  • 20. D. W. Hosmer , and S. Lemeshow . 2000. Applied logistic regression, 2nd edition. John Wiley & Sons, Inc., New York, 392 pp. Google Scholar
  • 21. T. Ingersoll , K. Navo , and P. Devalpine . 2010. Microclimate preferences during swarming and hibernation in the Townsend's big-eared bat, Corynorhinus townsendii. Journal of Mammalogy, 91: 1242–1250. Google Scholar
  • 22. J. B. Johnson , P. B. Wood , and J. W. Edwards . 2006. Are external mine entrance characteristics related to bat use? Wildlife Society Bulletin, 34: 1368–1375. Google Scholar
  • 23. S. A. Johnson , V. Brack , and R. E. Rolley . 1998. Overwinter weight loss of Indiana bats (Myotis sodalis) from hibernacula subject to human visitation. American Midland Naturalist, 139: 255–261. Google Scholar
  • 24. R. Krusic , M. Yamasaki , C. Neefus , and P. Pekins . 1996. Bat habitat use in White Mountain National Forest. Journal of Wildlife Management, 60: 625–631. Google Scholar
  • 25. C. Lausen , E. Baerwald , J. Gruver , and R. Barclay . 2010. Appendix 5: Bats and wind turbines. Presiting and pre-construction survey protocols. May 2008 update. In Handbook of inventory methods and standard protocols for surveying bats in Alberta ( M. Vonhof , ed.). Alberta Sustainable Resource Development, Fish and Wildlife Division, Edmonton, Alberta, 14 pp. Google Scholar
  • 26. J. Loo , and N. Ives , N. 2003. The Acadian forest: historical condition and human impacts. Forestry Chronicle, 79: 462–474. Google Scholar
  • 27. C. P. Lyman , J. S. Willis , A. Malan , and L. C. H. Wang . 1982. Hibernation and torpor in mammals and birds. Academic Press, Inc., San Diego, 328 pp. Google Scholar
  • 28. D. F. Mcalpine , K. J. Vanderwolf , G. J. Forbes , and D. Malloch . 2011. Consumption of bats (Myotis sp.) by raccoons (Procyon lotor) during an outbreak of white-nose syndrome in New Brunswick: implications for bat mortality estimates. Canadian Field Naturalist, 125: 157–160. Google Scholar
  • 29. D. H. Morse 1982. Behavioral mechanisms in ecology. Harvard University, Cambridge, Massachusetts, 392 pp. Google Scholar
  • 30. M. Moseley 2007a. Acadian biospeleology: composition and ecology of cave fauna of Nova Scotia and southern New Brunswick, Canada. International Journal of Speleology, 36: 1–21. Google Scholar
  • 31. M. Moseley 2007b. Records of bats (Chiroptera) at caves and mines in Nova Scotia. Curatorial Report, Nova Scotia Museum, Halifax, 99: 1–21. Google Scholar
  • 32. K. J. O. Norquay , F. Martinez-Nunex , J. E. Dubois , K. M. Monson , and C. K. R. Willis . 2013. Long distance movements of little brown bats (Myotis lucifugus). Journal of Mam malogy, 94: 506–515. Google Scholar
  • 33. Nova scotia department of natural resources. 2009. Nova Scotia abandoned mine openings database (DP ME 10, Version 4). Available at http://novascotia.ca/natr/meb/links/amolinks.asp. Google Scholar
  • 34. Nova scotia power inc. 2013. Interactive map of Nova Scotia's wind energy. Available at http://www.nspower.ca/en/home/aboutnspower/makingelectricity/renewable/map. aspx. Google Scholar
  • 35. K. Parsons , and G. Jones . 2003. Dispersion and habitat use by Myotis daubentonii and Myotis nattereri during the swarming season: implications for conservation. Animal Conservation, 6: 283. Google Scholar
  • 36. K. Parsons , G. Jones , I. Davidson-Watts , and F. Greenaway . 2003a. Swarming of bats at underground sites in Britain — implications for conservation. Biological Conservation, 111: 63. Google Scholar
  • 37. K. Parsons , G. Jones , and F. Greenaway . 2003b. Swarming activity of temperate zone microchiropteran bats: effects of season, time of night and weather conditions. Journal of Zoology (London), 261: 257–264. Google Scholar
  • 38. R. Raesly , and J. Gates . 1987. Winter habitat selection by north temperate cave bats. American Midland Natu ralist, 118: 15–31. Google Scholar
  • 39. N. Rivers , R. Butlin , and J. Altringham . 2006. Autumn swarm ing behaviour of Natterer's bats in the UK: population size, catchment area and dispersal. Biological Conservation, 127: 215–226. Google Scholar
  • 40. N. Rivers , R. Butlin , and J. Altringham . 2005. Genetic population structure of Natterer's bats explained by mating at swarming sites and philopatry. Molecular Ecology, 14: 4299–4312. Google Scholar
  • 41. J. R. Speakman , and D. W. Thomas . 2003. Physiological ecology and energetics of bats. Pp. 430–492, in Bat ecology ( T. H. Kunz and M. B. Fenton , eds.). Chicago University Press, Chicago, 798 pp. Google Scholar
  • 42. D. W. Thomas , and M. B. Fenton . 1979. Social behaviour of the little brown bat, Myotis lucifugus. 1. Mating behavior. Behavioral Ecology and Sociobiology, 6: 129–136. Google Scholar
  • 43. G. Turner , D. Reeder , and J. Coleman . 2011. A five-year assessment of mortality and geographic spread of white-nose syndrome in North American bats, with a look at the future. Bat Research News, 52: 13–27. Google Scholar
  • 44. United states fish and wildlife service. 2012. News Release: North American bat death toll exceeds 5.5 million from white-nose syndrome. Available at http://www.whitenosesyndrome.org/sites/default/files/files/wns_mortality _2012_nr_final_0.pdf. Google Scholar
  • 45. K. J. Vanderwolf , D. F. Mcalpine , and D. Malloch . 2013. Ectomycota associated with hibernating bats in eastern Canadian caves prior to the emergence of white-nose syndrome. Northeastern Naturalist, 20: 115–130. Google Scholar

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Bibliografia

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