Literature DB >> 2652193

Development of the lateral line system in Xenopus.

R Winklbauer1.   

Abstract

The lateral line system of fishes and amphibians consists of numerous epidermal mechano-receptors which are distributed over the whole body surface. As in other amphibians, the lateral line system of Xenopus develops from epidermal placodes situated on the head region of the embryo. The dorsolateralis placodes form a rostro-caudal series of epidermal thickenings centered around the otic placode. In this series, placodes remaining within the epidermis and forming lateral line primordia alternate with lateral line ganglion forming placodes. Each lateral line primordium elongates and migrates within the epidermis along a well-defined pathway, leaving behind a row of small cell groups, the primary lateral line organs. As the ganglion which supplies a given row of organs and the corresponding lateral line primordium originate in spatial contiguity, and as the axons of the lateral line nerve grow out together with the migrating primordium, the lateral line neurones remain in contact with their target cells throughout development. After segregation of a primary organ from a migrating primordium, cell differentiation occurs. Receptor cells establish afferent and efferent synaptic contacts with axons from the lateral line nerve. Apically, a bundle of stereocilia and a single, microtubule-containing kinocilium protrude from the surface of a receptor cell into a jelly-like cupula, which extends into the surrounding fluid. Displacement of the cupula and the concomitant bending of the cilia stimulates the receptor cells. The cilia of a receptor cell are asymmetrically arranged, and this structural polarity is related to the directional sensitivity of the cells. Two types of receptor cells, with opposite orientations, are intermingled within each organ, giving the whole organ a bidirectional sensitivity. The number of lateral line organs is increased by the process of accessory organ formation, where primary organs grow and divide to produce secondary organs. In this way, existing rows of organs are extended. Moreover, single primary organs are transformed into elongate plaques of closely apposed organs. The lateral line system has reached its greatest extent at late larval stages. During metamorphosis, the number of organ plaques is reduced in some lines, and one line even disappears completely. Two large, myelinated afferent fibers innervate a whole organ plaque. They branch repeatedly to supply every organ of the plaque, and each fiber is thought to innervate only receptor cells of the same polarity.(ABSTRACT TRUNCATED AT 400 WORDS)

Entities:  

Mesh:

Year:  1989        PMID: 2652193     DOI: 10.1016/0301-0082(89)90016-6

Source DB:  PubMed          Journal:  Prog Neurobiol        ISSN: 0301-0082            Impact factor:   11.685


  12 in total

Review 1.  Origin of the vertebrate inner ear: evolution and induction of the otic placode.

Authors:  A Streit
Journal:  J Anat       Date:  2001 Jul-Aug       Impact factor: 2.610

Review 2.  New insights into signaling during myelination in zebrafish.

Authors:  Alya R Raphael; William S Talbot
Journal:  Curr Top Dev Biol       Date:  2011       Impact factor: 4.897

3.  Schwann cells reposition a peripheral nerve to isolate it from postembryonic remodeling of its targets.

Authors:  Alya R Raphael; Julie R Perlin; William S Talbot
Journal:  Development       Date:  2010-09-28       Impact factor: 6.868

4.  Xenopus TRPN1 (NOMPC) localizes to microtubule-based cilia in epithelial cells, including inner-ear hair cells.

Authors:  Jung-Bum Shin; Dany Adams; Martin Paukert; Maria Siba; Samuel Sidi; Michael Levin; Peter G Gillespie; Stefan Gründer
Journal:  Proc Natl Acad Sci U S A       Date:  2005-08-22       Impact factor: 11.205

Review 5.  The power of amphibians to elucidate mechanisms of size control and scaling.

Authors:  Kelly E Miller; Christopher Brownlee; Rebecca Heald
Journal:  Exp Cell Res       Date:  2020-04-25       Impact factor: 3.905

6.  Flow sensing in developing Xenopus laevis is disrupted by visual cues and ototoxin exposure.

Authors:  Andrea Megela Simmons; Michaela Warnecke; Thanh Thao Vu; Andrew T Stevens Smith
Journal:  J Comp Physiol A Neuroethol Sens Neural Behav Physiol       Date:  2014-11-08       Impact factor: 1.836

7.  Lateral line-mediated rheotactic behavior in tadpoles of the African clawed frog (Xenopus laevis).

Authors:  Andrea M Simmons; Lauren M Costa; Hilary B Gerstein
Journal:  J Comp Physiol A Neuroethol Sens Neural Behav Physiol       Date:  2004-08-05       Impact factor: 1.836

8.  Notch signaling induces either apoptosis or cell fate change in multiciliated cells during mucociliary tissue remodeling.

Authors:  Alexia Tasca; Martin Helmstädter; Magdalena Maria Brislinger; Maximilian Haas; Brian Mitchell; Peter Walentek
Journal:  Dev Cell       Date:  2021-01-04       Impact factor: 12.270

9.  Lateral line placodes of aquatic vertebrates are evolutionarily conserved in mammals.

Authors:  Stefan Washausen; Wolfgang Knabe
Journal:  Biol Open       Date:  2018-06-19       Impact factor: 2.422

Review 10.  Developmental and architectural principles of the lateral-line neural map.

Authors:  Jesús Pujol-Martí; Hernán López-Schier
Journal:  Front Neural Circuits       Date:  2013-03-26       Impact factor: 3.492

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.