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Tissue Collection of Bats for -Omics Analyses and Primary Cell Culture
Published on: October 23, 2019
Global warming alters sound transmission: differential impact on the prey detection ability of echolocating bats
Jinhong Luo1, Klemen Koselj, Sándor Zsebok
1Max Planck Institute for Ornithology, Sensory Ecology Group, , Eberhard-Gwinner-Straße, 82319 Seewiesen, Germany.
Abstract:
Climate change impacts the biogeography and phenology of plants and animals, yet the underlying mechanisms are little known. Here, we present a functional link between rising temperature and the prey detection ability of echolocating bats. The maximum distance for echo-based prey detection is physically determined by sound attenuation. Attenuation is more pronounced for high-frequency sound, such as echolocation, and is a nonlinear function of both call frequency and ambient temperature. Hence, the prey detection ability, and thus possibly the foraging efficiency, of echolocating bats and susceptible to rising temperatures through climate change. Using present-day climate data and projected temperature rises, we modelled this effect for the entire range of bat call frequencies and climate zones around the globe. We show that depending on call frequency, the prey detection volume of bats will either decrease or increase: species calling above a crossover frequency will lose and species emitting lower frequencies will gain prey detection volume, with crossover frequency and magnitude depending on the local climatic conditions. Within local species assemblages, this may cause a change in community composition. Global warming can thus directly affect the prey detection ability of individual bats and indirectly their interspecific interactions with competitors and prey.
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