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Halfwerk, W.

Publications and source records attributed to Halfwerk, W..

2 recordsLinked to original sources

Floating frogs sound larger: environmental constraints on signal production drives call frequency changes

In animal communication, receivers benefit from signals providing reliable information on signallers traits of interest. Individuals involved in conflicts, such as competition between rivals, should pay particular attention to cues that are unfakeable by the senders due to the intrinsic properties of the production process. In bioacoustics, the best-known example of such index signals is the relationship between a senders body size and the dominant frequency of their vocalizations. Dominant frequency may however not only depend on an animals morphology but also on the interaction between the sound production system and its immediate environment. Here, we experimentally altered the environment surrounding calling frogs and assessed its impact on the signal produced. More specifically, we altered water level, which forced frogs to float on the surface and tested how this manipulation affected the shuttling of air between the lungs and the vocal sac, and how this in turn impacted the calls dominant frequency. Our results show that frogs that are floating are able to fully inflate their lungs and vocal sacs, and that the associated change in airflow or air pressure is correlated with a decrease of call dominant frequency.

evolutionary biology

An ultrasound absorbing inflorescence zone enhances echo-acoustic contrast of bat-pollinated cactus flowers

Flowering plants have evolved an extraordinary variety of signaling traits to attract and guide their pollinators. Most flowers rely on visual and chemical signals, but some bat-pollinated plants have evolved reflective surfaces to acoustically guide echolocating bats. All known acoustic flower signals rely on the same principle of increased sonar reflectivity. Here we describe a novel mechanism through which plants can make flowers acoustically conspicuous, a principle that relies on increased absorption of the area surrounding the flower. In a bat-pollinated columnar cactus (Espostoa frutescens) we found a hairy inflorescence zone, a so called cephalium. Flowers solely emerge out of this zone. We measured the ultrasound echoes of cephalia, flowers and unspecialized column surfaces and recorded echolocation calls of approaching bats. We found that the cephalium acts as strong ultrasound absorber, attenuating the sound by -14 dB compared to other parts of the column. The absorption was highest around the echolocation call frequencies of approaching bats. Our results indicate that, instead of making flowers more reflective, plants can also evolve structures to attenuate the background echo, thereby enhancing the acoustic contrast with the target. Similar sound absorbing mechanisms may be found in other species that interact with bats across a wide range of ecological contexts.

ecology