Cdh2 coordinates Myosin-II dependent internalisation of the zebrafish neural plate
Author
dc.contributor.author
Araya, Claudio
Author
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Häkkinen, Hanna Maria
Author
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Carcamo, Luis
Author
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Cerda, Mauricio
Author
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Savy, Thierry
Author
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Rookyard, Christopher
Author
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Peyriéras, Nadine
Author
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Clarke, Jonathan D.W.
Admission date
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2019-10-15T12:25:23Z
Available date
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2019-10-15T12:25:23Z
Publication date
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2019
Cita de ítem
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Scientific Reports, Volumen 9, Issue 1, 2019,
Identifier
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20452322
Identifier
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10.1038/s41598-018-38455-w
Identifier
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https://repositorio.uchile.cl/handle/2250/171671
Abstract
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Tissue internalisation is a key morphogenetic mechanism by which embryonic tissues generate complex internal organs and a number of studies of epithelia have outlined a general view of tissue internalisation. Here we have used quantitative live imaging and mutant analysis to determine whether similar mechanisms are responsible for internalisation in a tissue that apparently does not have a typical epithelial organisation – the zebrafish neural plate. We found that although zebrafish embryos begin neurulation without a conventional epithelium, medially located neural plate cells adopt strategies typical of epithelia in order to constrict their dorsal surface membrane during cell internalisation. Furthermore, we show that Myosin-II activity is a significant driver of this transient cell remodeling which also depends on Cdh2 (N-cadherin). Abrogation of Cdh2 results in defective Myosin-II distribution, mislocalised internalisation events and defective neural plate mor