Remote tracking of Galápagos pink land iguana reveals large elevational shifts in habitat use

Journal for Nature Conservation - Tập 68 - Trang 126210 - 2022
Giuliano Colosimo1,2, Marco Gargano3, Pierpaolo Loreti4, Lorenzo Bracciale4, Massimiliano De Luca5, Alexandro Catini4, Corrado Di Natale4, Carlos Vera6, Christian R. Sevilla6, Glenn P. Gerber1, Gabriele Gentile2
1San Diego Zoo Wildlife Alliance, United States
2Department of Biology, University of Rome “Tor Vergata”, Italy
3PhD Program in Evolutionary Biology and Ecology, Department of Biology, University of Rome Tor Vergata, Italy
4Department of Electronic Engineering, University of Rome Tor Vergata, Italy
5Italian National Council for Research, Italy
6Galápagos National Park Directorate, Ecuador

Tài liệu tham khảo

Allen, 2016, Linking movement ecology with wildlife management and conservation, Frontiers in Ecology and Evolution, 3 Auliya, 2016, Trade in live reptiles, its impact on wild populations, and the role of the European market, Biological Conservation, 204, 103, 10.1016/j.biocon.2016.05.017 Avgar, 2016, Integrated step selection analysis: Bridging the gap between resource selection and animal movement, Methods in Ecology and Evolution, 7, 619, 10.1111/2041-210X.12528 Burghardt, 1982 Cagnacci, 2010, Animal ecology meets gps-based radiotelemetry: A perfect storm of opportunities and challenges, Philosophical Transactions of the Royal Society B: Biological Sciences, 365, 2157, 10.1098/rstb.2010.0107 Calenge, 2006, The package “adehabitat” for the r software: A tool for the analysis of space and habitat use by animals, Ecological Modelling, 197, 516, 10.1016/j.ecolmodel.2006.03.017 Colosimo, 2020, Chemical signatures of femoral pore secretions in two syntopic but reproductively isolated species of Galápagos land iguanas (Conolophus marthae and C. subcristatus), 10, 14314 Colosimo, G., Gargano, M., Marta, S., Gratton, P., Vera, C., Sevilla, C., … Gentile, G. (n.d. ). Species distribution range of critically endangered Galá pagos Pink Land Iguana, Conolophus marthae. TBD. In preparation. Colosimo, 2022, Conservation of a flagship species: Health assessment of the pink land iguana, Conolophus marthae, PlosOne, 17, e0257179, 10.1371/journal.pone.0257179 Coulon, 2008, Inferring the effects of landscape structure on roe deer (Capreolus capreolus) movements using a step selection function, Landscape Ecology, 23, 603, 10.1007/s10980-008-9220-0 Di Giambattista, 2018, Molecular data exclude current hybridization between iguanas Conolophus marthae and C. subcristatus on Wolf Volcano (Galápagos Islands), Conservation Genetics, 19, 1461, 10.1007/s10592-018-1114-3 Di Giambattista, 2018, A molecular protocol to distinguish syntopic Galápagos land iguana species from stool samples (Conolophus marthae and C. subcristatus, Squamata, Iguanidae), Herpetology Notes, 11, 97 Ficetola, 2018, Differences between microhabitat and broad-scale patterns of niche evolution in terrestrial salamanders, Scientific Report, 8, 10575, 10.1038/s41598-018-28796-x Forester, 2009, Accounting for animal movement in estimation of resource selection functions: Sampling and data analysis, Ecology, 90, 3554, 10.1890/08-0874.1 Fortin, 2005, Wolves influence elk movements: Behavior shapes a trophic cascade in yellowstone national park, Ecology, 86, 1320, 10.1890/04-0953 Gentile, G. (2012). Conolophus marthae. The IUCN Red List of Threatened Species 2012: e.T174472A1414375. http://dx.doi.org/10.2305/IUCN.UK.2012-1.RLTS.T174472A1414375.en. Gargano, M., Colosimo, G., Gratton, P., Silvio, M., Brilli, M., Giustini, F., … Gentile, G. (n.d. ). Nitrogen and carbon stable isotope ratios analysis sheds light on trophic competition between two syntopic land iguana species from Galá pagos. Scientific Report. https://doi.org/10.21203/rs.3.rs-1638777/v1. Submitted for publication. Gentile, 2013, Illegal wildlife trade in Galápagos: Molecular tools help the taxonomic identification of confiscated iguanas and guide their rapid repatriation, Conservation Genetics Resources, 5, 867, 10.1007/s12686-013-9915-7 Gentile, 2009, An overlooked, pink species of land iguana in the Galápagos, Proceedings of the National Academy of Sciences, 106, 507, 10.1073/pnas.0806339106 Gentile, G., Marquez, C., Snell, H.L., Tapia, W., Izurieta, A. (2016). Conservation of a New Flagship Species The Galápagos Pink Land Iguana (Conolophus marthae Gentile and Snell, 2009). In Angelici, F.M. (Ed.), Problematic wildlife: A cross-disciplinary approach (pp. 315–336). Springer International Publishing. doi: 10.1007/978-3-319-22246-2_15. Gentile, 2009, Conolophus marthae sp.nov. (Squamata, Iguanidae), a new species of land iguana from the Galápagos archipelago, Zootaxa, 2201, 1, 10.11646/zootaxa.2201.1.1 Haynes, 2013, Bonferroni Correction Iverson, 2004, The nesting ecology of the Allen Cays rock iguana, Cyclura cychlura inornata in the Bahamas, Herpetological Monographs, 18, 1, 10.1655/0733-1347(2004)018[0001:TNEOTA]2.0.CO;2 Juri, 2015, Influence of Life History Traits on Trophic Niche Segregation between Two Similar Sympatric Tupinambis Lizards, South American Journal of Herpetology, 10, 132, 10.2994/SAJH-D-15-00002.1 Kays, 2015, Terrestrial animal tracking as an eye on life and planet, Science, 348, aaa2478, 10.1126/science.aaa2478 Langley, 1999, Dilution of Precision, GPS World, 10, 52 Leblond, 2010, What drives fine-scale movements of large herbivores?, A case study using moose. Ecography, 33, 1102 Loreti, 2020, Assessment and validation of miniaturized technology for the remote tracking of critically endangered Galápagos pink land iguana (Conolophus marthae), Animal Biotelemetry, 8, 3, 10.1186/s40317-020-0192-4 Loreti, 2019, The Design of an Energy Harvesting Wireless Sensor Node for Tracking Pink Iguanas, Sensors, 19, 985, 10.3390/s19050985 Lunghi, 2019, Consider species specialism when publishing datasets, Nature Ecology & Evolution, 3, 319, 10.1038/s41559-019-0803-8 McLean, 2018, Trajr: An r package for characterisation of animal trajectories, Ethology, 124, 440, 10.1111/eth.12739 Mueller, 2008, Search and navigation in dynamic environments – from individual behaviors to population distributions, Oikos, 117, 654, 10.1111/j.0030-1299.2008.16291.x Nathan, 2008, A movement ecology paradigm for unifying organismal movement research, Proceedings of the National Academy of Sciences, 105, 19052, 10.1073/pnas.0800375105 Onorati, 2017, Effects of parasitic infection and reproduction on corticosterone plasma levels in Galápagos land iguanas, Conolophus marthae and C. subcristatus, Ecology and Evolution, 7, 6046, 10.1002/ece3.3077 Onorati, 2016, Plasma concentrations of progesterone and estradiol and the relation to reproduction in Galápagos land iguanas, Conolophus marthae and C. subcristatus (Squamata, Iguanidae), Animal Reproduction Science, 172, 105, 10.1016/j.anireprosci.2016.07.007 R Core Team. (2019). R: A language and environment for statistical computing. Retrieved from https://cran.r-project.org. Ribeiro, 2009, Range structure, microhabitat use, and activity patterns of the saxicolous lizard Tropidurus torquatus(Tropiduridae) on a rock outcrop in Minas Gerais, Brazil, Revista chilena de historia natural, 82, 577, 10.4067/S0716-078X2009000400011 Richard, 2010, Cost distance modelling of landscape connectivity and gap-crossing ability using radio-tracking data, Journal of Applied Ecology, 47, 603, 10.1111/j.1365-2664.2010.01806.x Rivas, 1964, A Reinterpretation of the Concepts “Sympatric” and “Allopatric” with Proposal of the Additional Terms “Syntopic” and “Allotopic”, Systematic Zoology, 13, 42, 10.2307/2411436 Rivas-Torres, 2018, A methodology for mapping native and invasive vegetation coverage in archipelagos: An example from the Galápagos Islands, Progress in Physical Geography: Earth and Environment, 42, 83, 10.1177/0309133317752278 Roever, 2010, Grizzly bear movements relative to roads: Application of step selection functions, Ecography, 33, 1113, 10.1111/j.1600-0587.2010.06077.x R Studio Team. (2020). RStudio: Integrated Development for R. https://rstudio.com. Rouse, 1973, Monitoring vegetation systems in the Great Plains with ERTS. In Third Earth resources technology satellite-1 symposium, SP-351,, 309 Russell, 2005, Migration in amphibians and reptiles: An overview of patterns and orientation mechanisms in relation to life history strategies, 151 Signer, 2019, Animal movement tools (amt): R package for managing tracking data and conducting habitat selection analyses, Ecology and Evolution, 9, 880, 10.1002/ece3.4823 Southwood, 2010, Physiological, behavioral, and ecological aspects of migration in reptiles, Journal of Comparative Physiology B, 180, 1, 10.1007/s00360-009-0415-8 Thurfjell, 2014, Applications of step-selection functions in ecology and conservation, Movement Ecology, 2, 4, 10.1186/2051-3933-2-4 Trueman, 2010, Characterizing the Galápagos terrestrial climate in the face of global climate change, Galápagos Research. Tzika, 2008, Population genetics of Galápagos land iguana (genus Conolophus) remnant populations., Molecular Ecology, 17, 4943, 10.1111/j.1365-294X.2008.03967.x Viana, 2018, Linking seasonal home range size with habitat selection and movement in a mountain ungulate, Movement Ecology, 6, 1, 10.1186/s40462-017-0119-8 Werner, 1982, Social organization and ecology of land iguanas, Conolophus subcristatus, on Isla Fernandina, Galápagos, 342 Werner, 1983, Reproduction in the Iguana Conolophus subcristatus on Fernandina Island, Galápagos: Clutch Size and Migration Costs, The American Naturalist, 121, 757, 10.1086/284103