Möchten Sie über diese Zeitschrift informiert bleiben? Klicken Sie bitte auf die Buttons, um unsere Alerts zu abonnieren.
Möchten Sie über diese Zeitschrift informiert bleiben? Klicken Sie bitte auf die Buttons, um unsere Alerts zu abonnieren.
There is little work investigating the relationship between environmental changes and associated hippocampal effects on animal homing. We took advantage of previous studies in which wild, non-migratory mountain chickadees spent six months in captivity prior to being released. Over the following three years, 45.8% of the birds were resighted, and in all cases birds were identified less than 300 m from their initial capture locations at their respective elevation, despite previous studies documenting ca 30% captivity-related reduction of the hippocampus. Reproductive success of birds that spent six months in captivity did not differ from control birds that did not experience captivity. Our findings suggest that chickadees are highly site faithful and can return to their original capture location after spending time in captivity. Our results also have important implications for animal welfare practices as birds held in captivity bred successfully and may not need to be sacrificed following captivity.
Kauf
Sofortzugang erwerben (PDF-Download und unbegrenzter Online-Zugang):
Institutszugang
Melden Sie sich mit Open Athens, Shibboleth oder Ihren institutionellen Anmeldedaten an.
Persönliche Anmeldung
Melden Sie sich mit Ihrem brill.com-Konto an
Bates D., Maechler M., Bolker B., Walker S. (2015). _lme4: linear mixed-effects models using Eigen and S4. — R package version 1.1-8, available online at http://CRAN.Rproject.org/package=lme4.
Benvenuti S., Ioale P. (1980). Homing experiments with birds displaced from their wintering ground. — J. Ornithol. 121: 281-286.
Bingman V.P., Mench J.A. (1990). Homing behavior of hippocampus and parahippocampus lesioned pigeons following short-distance releases. — Behav. Brain Res. 40: 227-238.
Bingman V.P., Yates G. (1992). Hippocampal lesions impair navigational learning in experienced homing pigeons. — Behav. Neurosci. 106: 229-232.
Branch C.L., Kozlovsky D.Y., Pravosudov V.V. (2015a). Elevation related differences in female mate preferences in mountain chickadees) are smart chickadees choosier? — Anim. Behav. 99: 89-94.
Branch C.L., Kozlovsky D.Y., Pravosudov V.V. (2015b). Elevation related variation in aggressive response to mirror image in mountain chickadees. — Behaviour 152: 667-676.
Branch C.L., Pravosudov V.V. (2015). Mountain chickadees from different elevations sing different dialects) acoustic adaptation, temporal drift, or signal of local adaptation? — Roy. Soc. Open Sci. 2: 150019.
Brooke M. de L. (1979). Differences in the quality of territories held by wheatears (Oenanthe oenanthe). — J. Anim. Ecol. 48: 21-32.
Bulmer M.G. (1973). Inbreeding in the great tit. — Heredity 30: 313-325.
Catchpole C.K. (1972). A comparative study of territory in the reed warbler (Acrocephalus scirpaceus) and sedge warbler (A. schoenobaenus). — J. Zool. Lond. 166: 213-231.
Croston R., Branch C.I., Kozlowsky D.Y., Dukas R., Pravosudov V.V. (2015). Heritability and the evolution of cognitive traits. — Behav. Ecol. 26: 1447-1459.
Davies N.B., Krebs J.R., West S.A. (2012). An introduction to behavioural ecology. — Wiley-Blackwell, Oxford.
Day L.B., Guerra M., Schlinger B.A., Rothstein S.I. (2008). Sex differences in the effects of captivity on hippocampus size in brown-headed cowbirds (Molothrus ater obscurus). — Behav. Neurosci. 122: 527-534.
Dhondt A.A., Huble J. (1968). Fledging date and sex in relation to dispersal in young tits. — Bird Stud. 15: 127-134.
Ekman J. (1989). Ecology of non-breeding social systems of parus. — Wilson Bull. 101: 263-288.
Freas C.A., LaDage L.D., Roth T.C. II, Pravosudov V.V. (2012). Elevation-related differences in memory and the hippocampus in mountain chickadees, Poecile gambeli. — Anim. Behav. 84: 121-127.
Freas C.A., Bingman K., LaDage L.D., Pravosudov V.V. (2013). Untangling elevation related differences in the hippocampus in food caching mountain chickadees: the effect of a uniform captive environment. — Brain Behav. Evol. 82: 199-209.
Gagliardo A., Ioale P., Bingman V.P. (1999). Homing in pigeons: the role of the hippocampal formation in the representation of landmarks used for navigation. — J. Neurosci. 19: 311-315.
Google Earth V 7.1.5.1557 (2015). Sagehen Experimental Forest, California. 39°25′54.08″N, 120°14′29.45″W, Eye alt 8.64 km. — DigitalGlobe, 2016, available online at http://www.earth.google.com (accessed 1 March 2016).
Greenwood P.J., Harvey P.H., Perins C.M. (1979). The role of dispersal in the great tit (Parus major): the causes consequences and heritability of natal dispersal. — J. Anim. Ecol. 48: 123-142.
Greenwood P.J., Harvey P.H. (1982). The natal and breeding dispersal of birds. — Annu. Rev. Ecol. Syst. 13: 1-21.
Hampton R.R., Shettleworth S.J. (1996). Hippocampal lesions impair memory for location but not color in passerine birds. — Behav. Neurosci. 110: 831-835.
Harrap S., Quinn D. (1995). Chickadees, nuthatches and treecreepers. — Princeton University Press, Princeton, NJ.
Harvey P.H., Greenwood P.J., Perins C.M. (1979). Breeding area fidelity of the great tit (Parus major). — J. Anim. Ecol. 48: 305-313.
Herculano-Houzel S. (2011). Brains matter, bodies maybe not: the case for examining neuron numbers irrespective of body size. — Ann. NY Acad. Sci. 1225: 191-199.
Hinde R.A. (1956). The biological significance of the territories of birds. — Ibis 98: 340-369.
Hoover J.P. (2003). Decision rules for site fidelity in a migratory bird, the prothonotary warbler. — Ecology 84: 416-430.
Keiser J.T., Ziegenfus C.W.S., Cristol D.A. (2005). Homing success of migrant versus nonmigrant dark-eyed juncos (Junco hyemalis). — Auk 122: 608-617.
Kozlovsky D.Y., Branch C.L., Freas C.A., Pravosudov V.V. (2014). Elevation related differences in novel environment exploration and social dominance in food caching mountain chickadees. — Behav. Ecol. Sociobiol. 68: 1871-1881.
Kozlovsky D.Y., Branch C.L., Pravosudov V.V. (2015a). Problem-solving ability and response to novelty in mountain chickadees (Poecile gambeli) from different elevations. — Behav. Ecol. Sociobiol. 69: 635-643.
Kozlovsky D.Y., Branch C.L., Pravosudov V.V. (2015b). Elevation-related differences in parental risk-taking behavior are associated with cognitive variation in mountain chickadees. — Ethology 1(20): 1-12.
Kristin A., Hoi H., Valera F., Hoi C. (2007). Philopatry, dispersal patterns and nest-site reuse in lesser grey shrikes (Lanius minor). — Biodiv. Conserv. 16: 987-995.
Kuznetsova A., Brockhoff P.B., Christensen R.H.B. (2015). lmerTest: tests in linear mixed effects models. — R package version 2.0-25, available online at http://CRAN.R-project.org/package=lmerTest.
LaDage L.D., Roth T.C. II, Fox R.A., Pravosudov V.V. (2009). Effects of captivity and memory-based experiences on the hippocampus in mountain chickadees. — Behav. Neurosci. 123: 284-291.
LaDage L.D., Roth T.C. II, Fox R.A., Pravosudov V.V. (2010). Ecologically relevant memory use modulates hippocampal neurogenesis. — Proc. Roy. Soc. Lond. B: Biol. Sci. 277: 1071-1079.
McCallum D.A., Grundel R., Dahlsten D.L. (1999). Mountain chickadee (Poecile gambeli), The birds of North America online (A. Poole, ed.). Cornell Lab of Ornithology, Ithaca, NY. — Retrieved from the birds of North America online, available onine at http://bna.birds.cornell.edu.innopac.library.unr.edu/bna/species/453.
Mettke-Hofmann C., Gwinner E. (2003). Long-term memory for a life on the move. — Proc. Natl. Acad. Sci. USA 100: 5863-5866.
Newton I., Marquiss M. (1982). Fidelity to breeding area and mate in the sparrowhawk Accipiter nisus. — J. Anim. Ecol. 51: 327-341.
Paton P.W.C., Edwards T.C. Jr. (1996). Factors affecting interannual movements of snowy plovers. — Auk 113: 534-543.
Pravosudov V.V., Kitaysky A.S., Omanska A. (2006). The relationship between migratory behaviour, memory and the hippocampus: an intraspecific comparison. — Proc. Roy. Soc. Lond. B: Biol. Sci. 273: 2641-2649.
Pravosudov V.V., Roth T.C. II (2013). Cognitive ecology of food hoarding: the evolution of spatial memory and the hippocampus. — Annu. Rev. Ecol. Evol. Syst. 44: 173-193.
R Core Team (2013). R: a language and environment for statistical computing. — R Foundation for Statistical Computing, Vienna. Available online at http://www.R-project.org/.
Ralph C.J., Mewaldt L.R. (1976). Homing success in wintering sparrows. — Auk 93: 1-14.
Roth T.C., LaDage L.D., Freas C., Pravosudov V.V. (2012). Variation in memory and the hippocampus across populations from different climates: a common garden approach. — Proc. Roy. Soc. Lond. B: Biol. Sci. 279: 402-410.
Schmidt-Koenig K., Schlichte H.J. (1972). Homing in pigeons with impaired vision. — Proc. Natl. Acad. Sci. USA 69: 2446-2447.
Schubert K.A., Mennill D.J., Ramsay S.M., Otter K.A., Ratcliffe L.M., Kraus C. (2008). Between-year survival and rank transitions in male black-capped chickadees (Poecile atricapillus) a multistate modeling approach. — Auk 125: 629-636.
Schwagmeyer P.L. (1994). Competitive mate searching in thirteen-lined ground squirrels (Mammalia, Sciuridae): potential roles of spatial memory. — Ethology 98: 265-276.
Sedgwick J.A. (2004). Site fidelity, territory fidelity, and natal philopatry in willow flycatchers (Empidonax traillii). — Auk 121: 1103-1121.
Sherry D.F. (2006). Neuroecology. — Annu. Rev. Psychol. 57: 167-197.
Smulders T.V., Casto J.M., Nolan V. Jr., Ketterson E.D., De Voogd T.J. (2000). Effects of captivity and testosterone on the volumes of four brain regions in the dark-eyed junco (Junco hyemalis). — J. Neurobiol. 43: 244-253.
Sniegowski P.D., Ketterson E.D., Nolan V. Jr. (1988). Can experience alter the avian annual cycle? Results of migration experiments with indigo buntings. — Ethology 79: 333-341.
Spritzer M.D., Meikle D.B., Solomon N.G. (2004). The relationship between dominance rank and spatial ability among male meadow voles (Microtus pennsylvanicus). — J. Comp. Psychol. 118: 332-339.
Wallraff H.G. (2005). Avian navigation: pigeon homing as a paradigm. — Springer, Berlin.
| Insgesamt | Letzte 365 Tage | In den letzten 30 Tagen | |
|---|---|---|---|
| Aufrufe von Kurzbeschreibungen | 598 | 105 | 15 |
| Gesamttextansichten | 197 | 1 | 0 |
| PDF-Downloads | 78 | 0 | 0 |
There is little work investigating the relationship between environmental changes and associated hippocampal effects on animal homing. We took advantage of previous studies in which wild, non-migratory mountain chickadees spent six months in captivity prior to being released. Over the following three years, 45.8% of the birds were resighted, and in all cases birds were identified less than 300 m from their initial capture locations at their respective elevation, despite previous studies documenting ca 30% captivity-related reduction of the hippocampus. Reproductive success of birds that spent six months in captivity did not differ from control birds that did not experience captivity. Our findings suggest that chickadees are highly site faithful and can return to their original capture location after spending time in captivity. Our results also have important implications for animal welfare practices as birds held in captivity bred successfully and may not need to be sacrificed following captivity.
| Insgesamt | Letzte 365 Tage | In den letzten 30 Tagen | |
|---|---|---|---|
| Aufrufe von Kurzbeschreibungen | 598 | 105 | 15 |
| Gesamttextansichten | 197 | 1 | 0 |
| PDF-Downloads | 78 | 0 | 0 |