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Schwigon, L.

Publications and source records attributed to Schwigon, L..

2 recordsLinked to original sources

Mapping the magnetoreceptive brain: A 3D digital atlas of the migratory bird Eurasian blackcap (Sylvia atricapilla)

Birds undisputedly range amongst natures foremost navigators. To successfully navigate between breeding and wintering quarters, they, in addition to other natural orientation cues, rely on their ability to sense the Earths magnetic field. For this reason, migratory birds have become key model species for studying the sensory mechanisms underlying magnetic field-guided navigation, as evidenced by the identification of several brain regions believed to be involved in processing magnetic field information. However, there is as yet no readily accessible, high-resolution three-dimensional (3D) brain atlas to serve as a common reference within and across studies. Here we provide the neuroscience research community with the first freely available, digital, high-resolution (25 {micro}m), 3D bird brain atlas. It is based on light microscopy images from ten Eurasian blackcaps (Sylvia atricapilla), a night-migratory songbird widely used model species in magnetoreception and navigation research. We outline the individual steps for the creation of a brain atlas, from whole-brain imaging using serial-section, two-photon tomography, to the creation of an average template at an isotropic 25-{micro}m voxel size, and finally to brain area segmentation and annotation. In this first version of the atlas, we have mapped a total of 24 brain areas, including 6 principal compartments, 13 conspicuous anatomical subdivisions common to all bird species and 5 functionally defined areas of the visual and trigeminal sensory systems involved in processing magnetic field information. This atlas is accessible via the standardised BrainGlobe Atlas API, making it compatible with a growing suite of computational neuroanatomy tools provided by the BrainGlobe Initiative. This integration enables precise alignment of future experimental data to a common coordinate space, facilitating collaboration, data visualization and sharing. Furthermore, this resource enables the accurate localization and comparison of implanted devices, injection sites, and/or cell populations across individual brains, both within and across studies.

neuroscience↗

Cryptochrome 4b protein is likely irrelevant for the radical pair based magnetoreception in the European robin

Avian cryptochrome 4 (Cry4) protein is a putative magnetosensitive molecule facilitating precise long-distance navigation in migratory birds. Two splice variants of Cry4 were reported in European robin (Erithacus rubecula), namely ErCry4a and ErCry4b. It is known that ErCry4a protein exhibits electron transfer between the flavin adenine dinucleotide (FAD) cofactor and tryptophan residues that generates magnetically sensitive radical pairs for magnetoreception. However, little is known about the ErCry4b isoform. We therefore characterized the properties of ErCry4b to see whether it fulfills prerequisites to be a radical pair magnetic sensor molecule. Our results show that ErCry4b protein does not bind FAD in vitro. Computational structure simulations revealed that the FAD non-binding in ErCry4b is likely due to protein structure dynamics. Furthermore, ErCry4b protein abundance in the robin retina, cerebellum and liver is below the detection limit of immunoprecipitation assays coupled with mass spectrometry. Meanwhile, transcript analyses show that ErCRY4b mRNA abundance is 10 times less than ErCRY4b in the retina. In conclusion, ErCry4b does not fulfill the prerequisites to be a radical pair based magnetic sensing molecule due to the lack of FAD binding, and it might not even be expressed as a functional protein in the European robin.

biochemistry↗