A refined magnetic pulse treatment method for magnetic navigation experiments with adequate sham control: a case study on free-flying songbirds

Author:

Karwinkel Thiemo12ORCID,Winklhofer Michael23ORCID,Allenstein Dario12ORCID,Brust Vera1ORCID,Christoph Paula124,Holland Richard A.5ORCID,Hüppop Ommo1ORCID,Steen Jan14,Bairlein Franz16ORCID,Schmaljohann Heiko12ORCID

Affiliation:

1. Institute of Avian Research ‘Vogelwarte Helgoland’, An der Vogelwarte 21, 26386 Wilhelmshaven, Germany

2. School of Mathematics and Science, Institute of Biology and Environmental Sciences, Carl von Ossietzky Universität Oldenburg, Ammerländer Heerstraße 114–118, Oldenburg 26129, Germany

3. Research Center for Neurosensory Sciences, Carl von Ossietzky Universität Oldenburg, Ammerländer Heerstraße 114–118, Oldenburg 26129, Germany

4. Institute of Landscape Ecology, Westfälische Wilhelms-Universität Münster, Heisenbergstr. 2, Münster 48149, Germany

5. School of Environmental and Natural Sciences, University of Bangor, Deiniol Road, Bangor LL57 2UW, UK

6. Max Planck Institute of Animal Behavior, Am Obstberg 1, Radolfzell 78315, Germany

Abstract

Migratory songbirds may navigate by extracting positional information from the geomagnetic field, potentially with a magnetic-particle-based receptor. Previous studies assessed this hypothesis experimentally by exposing birds to a strong but brief magnetic pulse aimed at remagnetizing the particles and evoking an altered behaviour. Critically, such studies were not ideally designed because they lacked an adequate sham treatment controlling for the induced electric field that is fundamentally associated with a magnetic pulse. Consequently, we designed a sham-controlled magnetic-pulse experiment, with sham and treatment pulse producing a similar induced electric field, while limiting the sham magnetic field to a value that is deemed insufficient to remagnetize particles. We tested this novel approach by pulsing more than 250 wild, migrating European robins ( Erithacus rubecula ) during two autumn seasons. After pulsing them, five traits of free-flight migratory behaviour were observed, but no effect of the pulse could be found. Notably, one of the traits, the migratory motivation of adults, was significantly affected in only one of the two study years. Considering the problem of reproducing experiments with wild animals, we recommend a multi-year approach encompassing large sample size, blinded design and built-in sham control to obtain future insights into the role of magnetic-particle-based magnetoreception in bird navigation.

Funder

Deutsche Forschungsgemeinschaft

Federal Agency for Nature Conservation, Federal Ministry for the Environment, Nature Conservation and Nuclear Safety

Publisher

The Royal Society

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