Literature DB >> 29292495

Neural connections of the pretectum in zebrafish (Danio rerio).

Julián Yáñez1,2, Tania Suárez1, Ana Quelle3,4, Mónica Folgueira1,2, Ramón Anadón5.   

Abstract

The pretectum is a complex region of the caudal diencephalon which in adult zebrafish comprises both retinorecipient (parvocellular superficial, central, intercalated, paracommissural, and periventricular) and non-retinorecipient (magnocellular superficial, posterior, and accessory) pretectal nuclei distributed from periventricular to superficial regions. We conducted a comprehensive study of the connections of pretectal nuclei by using neuronal tracing with fluorescent carbocyanine dyes. This study reveals specialization of efferent connections of the various pretectal nuclei, with nuclei projecting to the optic tectum (paracommissural, central, and periventricular pretectal nuclei), the torus longitudinalis and the cerebellar corpus (paracommissural, central, and intercalated pretectal nuclei), the lateral hypothalamus (magnocellular superficial, posterior, and central pretectal nuclei), and the tegmental regions (accessory and superficial pretectal nuclei). With regard to major central afferents to the pretectum, we observed projections from the telencephalon to the paracommissural and central pretectal nuclei, from the optic tectum to the paracommissural, central, accessory and parvocellular superficial pretectal nuclei, from the cerebellum to the paracommissural and periventricular pretectal nuclei and from the nucleus isthmi to the parvocellular superficial and accessory pretectal nuclei. The parvocellular superficial pretectal nucleus sends conspicuous projections to the contralateral magnocellular superficial pretectal nucleus. The composite figure of results reveals large differences in connections of neighbor pretectal nuclei, indicating high degree of nuclear specialization. Our results will have important bearings in functional studies that analyze the relationship between specific circuits and behaviors in zebrafish. Comparison with results available in other species also reveals differences in the organization and connections of the pretectum in vertebrates.
© 2018 Wiley Periodicals, Inc.

Entities:  

Keywords:  cerebellum; cyprinids; horizontal commissure; hypothalamus; mammillary nucleus; optic tectum; pretectum; telencephalon

Mesh:

Substances:

Year:  2018        PMID: 29292495     DOI: 10.1002/cne.24388

Source DB:  PubMed          Journal:  J Comp Neurol        ISSN: 0021-9967            Impact factor:   3.215


  13 in total

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4.  Nucleus Isthmi Is Required to Sustain Target Pursuit during Visually Guided Prey-Catching.

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5.  Tracing of Afferent Connections in the Zebrafish Cerebellum Using Recombinant Rabies Virus.

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6.  Input from torus longitudinalis drives binocularity and spatial summation in zebrafish optic tectum.

Authors:  Alexander L Tesmer; Nicholas P Fields; Estuardo Robles
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7.  A cerebellar internal model calibrates a feedback controller involved in sensorimotor control.

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8.  Contributions of Luminance and Motion to Visual Escape and Habituation in Larval Zebrafish.

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9.  Anatomy and Connectivity of the Torus Longitudinalis of the Adult Zebrafish.

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Review 10.  Circuit Organization Underlying Optic Flow Processing in Zebrafish.

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Journal:  Front Neural Circuits       Date:  2021-07-21       Impact factor: 3.492

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