Abstract
Aim: Predicting the distribution of species relies increasingly on understanding the spatially explicit constraints of environmental conditions on an organism’s physiological traits. We combined an empirical model of temperature-dependent embryonic development with a mechanistic model of soil temperatures to examine potential thermal limitations on the distribution of a nocturnal, oviparous skink, Oligosoma suteri, a range-restricted endemic.
Location: New Zealand.
Methods: We estimated a thermal requirement for successful embryonic developmentas 616 degree-days above a threshold of 13.8°C. We then modelled soil temperaturesat representative sites across New Zealand and predicted duration ofincubation to map the distribution of potentially viable oviposition sites, given variationin the timing of egg-laying under even temperature increases.
Results: Successful development of O. suteri embryos is possible in locations outside their current distribution. Increasing temperatures increased the species’ potential range, reducing incubation duration and lengthening the oviposition window. However, due to the disconnected nature of their rocky shore habitat, individuals may not be able to disperse to currently uninhabited sites within that extended range. Additionally, although locations may be thermally suitable for incubation, predation by introduced mammals, competition and habitat modification may prevent successful establishment of populations.
Main conclusions: Our models contribute to understanding fundamental physiological constraints on an important life history stage that will inform conservation management actions, including potential future translocations.
Location: New Zealand.
Methods: We estimated a thermal requirement for successful embryonic developmentas 616 degree-days above a threshold of 13.8°C. We then modelled soil temperaturesat representative sites across New Zealand and predicted duration ofincubation to map the distribution of potentially viable oviposition sites, given variationin the timing of egg-laying under even temperature increases.
Results: Successful development of O. suteri embryos is possible in locations outside their current distribution. Increasing temperatures increased the species’ potential range, reducing incubation duration and lengthening the oviposition window. However, due to the disconnected nature of their rocky shore habitat, individuals may not be able to disperse to currently uninhabited sites within that extended range. Additionally, although locations may be thermally suitable for incubation, predation by introduced mammals, competition and habitat modification may prevent successful establishment of populations.
Main conclusions: Our models contribute to understanding fundamental physiological constraints on an important life history stage that will inform conservation management actions, including potential future translocations.
| Original language | English |
|---|---|
| Pages (from-to) | 1872-1883 |
| Number of pages | 12 |
| Journal | Journal of Biogeography |
| Volume | 45 |
| Issue number | 8 |
| DOIs | |
| Publication status | Published - 31 Jul 2018 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 13 Climate Action
Keywords
- climate change
- degree-days
- embryonic development
- mechanistic microclimate model
- Oligosoma suteri
- temperature-dependent
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