Adaptations of the reed frog Hyperolius viridiflavus (Amphibia, Anura, Hyperoliidae) to its arid environment
- 31 October 1988
- journal article
- research article
- Published by Springer Nature in Oecologia
- Vol. 77 (3) , 327-338
- https://doi.org/10.1007/bf00378038
Abstract
After breeding African savanna dwelling reed-frogs of the “superspecies” Hyperolius viridiflavus face a severe dry season. The frogs withstand the adverse abiotic conditions in exposed positions, clinging to dry vegetation. Only juveniles (300–700 mg) are able to adjust water economy and metabolism to a prolonged dry season. Wet season frogs attain low levels of evaporative water loss (EWL) within 6–8 days after incipient water shortage. This time course is mainly determined by the animal's ability to lower metabolism and activity level to the minimum demands of a dry season. Barriers against diffusion of water which most probably are built up by the stratum corneum and/or the overlying film of dried mucus seem not to be essentially modified during adjustment to dry season conditions. Changeover to dry season physiology is greatly accelerated through preconditioning frogs to water shortage. AdultHyperoliusare unable to reduce activity and metabolism as fast and effectively as juveniles. Most probably these are the main reasons for their very restricted survival capability under dry season conditions; the generally poor energy reserves after the breeding period may further shorten their survival time. At the critical thermal maximum (CTM) Hyperolius uses skin gland secretions for evaporative cooling. Acclimation effects and regulation of evaporative cooling within some 1/10° C help to employ limited water reserves very economically. Dry adapted, dehydrated frogs take up water, whenever available, via specialized skin areas. Rate of uptake is high and is mainly determined by the actual stage of dehydration. The onset of the water-balance-response is also affected by preconditioning. Survival time of small (500 mg) the amount of stored energy determines maximal survival time. When a critical size is reached in postmetamorphic growth, a change in energy allocation from body growth to energy storage would improve prospects of survival and should therefore be expected. Species specific differences in regard to EWL and CTM indicate a strong correlation between physiological properties and ecological demands.Keywords
This publication has 40 references indexed in Scilit:
- Evaporative water loss and skin lipids of anuran amphibiansJournal of Experimental Zoology, 1984
- Lipids and the permeability of epidermis from snakesJournal of Experimental Zoology, 1983
- Water balance in Ceratophrys ornata from two different environmentsComparative Biochemistry and Physiology Part A: Physiology, 1980
- Water relations in the toad (Bufo viridis) and a comparison with the frog (Rana ridibunda)Comparative Biochemistry and Physiology Part A: Physiology, 1979
- Skin Structure and Wiping Behavior of Phyllomedusine FrogsIchthyology & Herpetology, 1976
- Physiological correlates of basking in amphibiansComparative Biochemistry and Physiology Part A: Physiology, 1975
- Adaptations in the water economy of some anuran amphibiaComparative Biochemistry and Physiology Part A: Physiology, 1974
- Vascular supply to the ventral pelvic region of anurans as related to water balanceJournal of Morphology, 1973
- Nitrogen metabolism of the South American lungfish Lepidosiren paradoxaComparative Biochemistry and Physiology Part B: Comparative Biochemistry, 1972
- Uricotelism and Low Evaporative Water Loss in a South American FrogScience, 1972