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Thermal fluctuations affect embryonic physiology in a tropical agamid lizard
Amanda Ben1, Debarpita Das1, Nubla Bm2
1Centre for Ecological Sciences, Indian Institute of Science, Bangalore, 560012, Karnataka, India.
The Journal of Experimental Biology
|July 24, 2026
Summary
Climate change impacts reptiles. Fluctuating temperatures during incubation, not constant ones, reveal the true effects on embryonic development and hatchling size in tropical reptiles like the Indian rock agama.
Area of Science:
- Herpetology
- Climate Change Biology
- Developmental Physiology
Background:
- Climate change is increasing global temperatures and thermal variability.
- Ectothermic reptile embryos are particularly vulnerable to thermal stress due to limited thermoregulation and absence of parental care.
- Existing incubation studies often use constant temperatures, failing to represent natural thermal fluctuations experienced by tropical reptiles.
Purpose of the Study:
- To investigate the effects of constant versus fluctuating incubation temperatures on embryonic physiology, development, and hatchling characteristics.
- To assess the vulnerability of tropical reptile embryos to realistic thermal regimes.
- To compare the outcomes of constant and fluctuating temperature incubations in the Indian rock agama (Psammophilus dorsalis).
Main Methods:
- Indian rock agama eggs were incubated under five different thermal regimes: constant 25°C, 30°C, 35°C, and fluctuating regimes F2 (25-30°C) and F3 (25-30-35°C).
- Embryonic heart rate, egg mass gain, development time, hatching success, and hatchling size were monitored.
- Mortality rates under different temperature conditions were recorded.
Main Results:
- Constant 35°C incubation resulted in complete embryonic mortality.
- The warmest fluctuating regime (F3) led to dampened embryonic heart rate, accelerated egg mass gain, and reduced incubation duration.
- Hatching success and hatchling size were significantly lower under the F3 fluctuating regime compared to others, indicating negative impacts of thermal variability.
Conclusions:
- Incubation temperature variability significantly impacts reptilian embryonic development and fitness.
- Constant temperature incubations may underestimate the detrimental effects of climate change on tropical reptiles.
- Utilizing fluctuating temperature regimes is crucial for accurately assessing the climate vulnerability of reptile populations.

