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Holly, D.

Publications and source records attributed to Holly, D..

2 recordsLinked to original sources

Effects of mild winter conditions and two pyrethroid insecticides on the development and survival of juvenile common toads (Bufo bufo)

Combined effects of pollutants and climate change can have long-term negative effects on Earths biodiversity. We tested how amphibians are affected by exposure to pesticides around metamorphosis in combination with current winter conditions or those projected to become the norm by 2100. We applied two pyrethroid insecticides, cypermethrin or deltamethrin, to newly metamorphosed common toads (Bufo bufo) via spraying, thereafter reared animals in outdoor enclosures, and finally exposed them either to a long&cold winter (1.5 {degrees}C for 91 days) or to a short&mild one (4.5 {degrees}C for 61 days). After hibernation, we examined changes in body mass, size and gross morphology of parotoid glands and visceral organs, and determined the phenotypic sex of the surviving toadlets. In the long&cold winter scenario, we observed high mortality rate, regardless of the chemical treatment (control: 82%, cypermethrin: 78%, deltamethrin: 70%). At the same time, mortality was significantly lower in the short&mild winter scenario (control: 33%, cypermethrin: 41%, deltamethrin: 26%). The decrease in body mass during overwintering did not differ among treatment groups. Our results contradict the hypothesis of sex-biased mortality caused by chemical pollutants, harsh or mild winter conditions or by their combination. No significant deformations of the internal organs were found in either group. Our results suggest that winter conditions becoming ever milder in the temperate zone may prove beneficial for amphibian overwinter survival, and that exposure to the tested pyrethroids at ecologically relevant concentrations after metamorphosis does not interfere with the fitness of juvenile common toads.

zoology↗

Amphibian larvae benefit from a warm environment under simultaneous threat from chytridiomycosis and ranavirosis

Rising temperatures can facilitate epizootic outbreaks, but disease outbreaks may be suppressed if temperatures increase beyond the optimum of the pathogens while still within the temperature range that allows for effective immune function in hosts. The two most devastating pathogens of wild amphibians, Batrachochytrium dendrobatidis (Bd) and ranaviruses (Rv), co-occur in large areas, yet little is known about the consequences of their co-infection and how these consequences depend on temperature. Here we tested how co-infection and elevated temperatures (28 and 30{degrees}C vs. 22{degrees}C) affected Bd and Rv prevalence, infection intensities, and resulting mortalities in larval agile frogs and common toads. We found multiple pieces of evidence that the presence of one pathogen influenced the prevalence and/or infection intensity of the other pathogen in both species, depending on temperature and initial Rv concentration. Generally, the 30{degrees}C treatment lowered the prevalence and infection intensity of both pathogens, and, in agile frogs, this was mirrored by higher survival. These results suggest that if temperatures naturally increase or are artificially elevated beyond what is ideal for both Bd and Rv, amphibians may be able to control infections and survive even the simultaneous presence of their most dangerous pathogenic enemies.

evolutionary biology↗