PhoToBe · New ways from photon to behaviour: Finding new phototransduction cascades in fan worms
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2020-01-01 → 2021-12-31
- EU contribution
- €212,934
- Participants
- 1
- Scheme
- MSCA-IF
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Results in brief
New ways from photon to behaviour: Finding new phototransduction cascades in fan worms
Seeing is essential for us, and so we wonder how easily it evolves? Its fundamental unit is the photoreceptor cell. Such a cell uses a molecular transduction system that detects photons and translates them into a cellular signal, which then the animal uses for behavior. Even though all animals share the molecular and cellular origin, they evolved a diversity of eyes independently. However, comparative vision research has only focused on a few taxa such as vertebrates, arthropods, and cephalopods. Therefore, our knowledge of eye evolution is limited. Fanworms evolved relatively recently eyes on their radioles, which are tentacles that form their fans. These radioles are used for respiration and collecting food particles. Fanforms are sessile and live in tubes. When their eyes see a predator, the worm quickly retreats into its tube to protect the fan. The eyes in different fanworm species evolved independently and thus probably also their phototransduction cascades. Therefore, fanworms are an ideal new model system to study eye evolution and the possible phototransduction cascades. The overall objectives of the project were to determine all the phototransduction components in the eyes of two fan worm species: Spirobranchus corniculatus and Acromegalomma vesiculosum. The first step was to find putative opsin and G-alpha protein sequences in existing transcriptomes and identify those by phylogenetic reconstruction. The second step was to check whether mRNA of those sequences were expressed in the eyes of the focal species by in situ hybridization, and more importantly to check whether the opsin and the G-alpha protein mRNA were expressed in the same cell as this is required for the encoded proteins to interact with each other so that they can be part of the phototransduction cascade. The third step was to establish the interaction via electrophysiology with knock-down and pharmacology. Knowing the identity of the opsin and the G-protein narrows down significantly the possibilities of molecules that could be further downstream in the phototransduction cascade. These potential downstream molecules would be checked with the same methods whether they are indeed in the phototransduction cascade.
Data: CORDIS, © European Union
Project objective
Vision is the sense for human beings. We can imagine how the world looks like for animals with visual systems like ours. But for animals with very different visual systems this differs, such as fan worms. Fan worms from different differ in their visual systems tremendously. Some have no visible eyes at all, maybe photosensitive cells not visible without technical help. Others have simple eyes consisting of a photoreceptor and a pigment cell. Others have complicated compound eyes, possibly mediating true vision. The different species form a progressing systems for studying eye evolution. These eyes evolved independently from vertebrate and insect eyes, because they are not in the head but on head appendages called fan. These eyes use also other phototransduction cascades than vertebrates or insects. However, what the exact components are, is unknown. My proposal seeks to answer that question.
Original text from CORDIS.
Participants
- UNIVERSITY OF BRISTOL · BRISTOLCoordinatorUnited Kingdom
Links
Data: CORDIS, © European Union
