RNASeq of molecular basis of ancestral vertebrate electroreception

Elasmobranch fishes, including sharks, rays, and skates, use specialized electrosensory organs called Ampullae of Lorenzini to detect extremely small changes in environmental electric fields. Electrosensory cells within these ampullae are able to discriminate and respond to minute changes in environmental voltage gradients through an as-yet unknown mechanism. Here we show that the voltage-gated calcium channel CaV1.3 and big conductance calcium-activated potassium (BK) channel are preferentially expressed by electrosensory cells in little skate (Leucoraja erinacea) and functionally couple to mediate electrosensory cell membrane voltage oscillations, which are important in the detection of specific, weak electrical signals. Both channels exhibit unique properties compared with their mammalian orthologues to support electrosensory functions: structural adaptations in CaV1.3 mediate a low voltage threshold for activation, while alterations in BK support specifically tuned voltage oscillations. These findings reveal a molecular basis of electroreception and demonstrate how discrete evolutionary changes in ion channel structure facilitate sensory adaptation. Overall design: Examination of gene expression in ampullary cells, ampullary canals, body skin, and liver from one adult Leucoraja erinacea skate prepared from poly A+ RNA using Illumina TruSeq Stranded mRNA Library Prep Kit

Identifier
Source https://data.blue-cloud.org/search-details?step=~0125758517C5EF5B246801010B3A93F11FC6AEB344B
Metadata Access https://data.blue-cloud.org/api/collections/5758517C5EF5B246801010B3A93F11FC6AEB344B
Provenance
Instrument Illumina HiSeq 4000; ILLUMINA
Publisher Blue-Cloud Data Discovery & Access service; ELIXIR-ENA
Publication Year 2025
OpenAccess true
Contact blue-cloud-support(at)maris.nl
Representation
Discipline Marine Science
Temporal Point 2017-03-10T00:00:00Z