Click here to close
Hello! We notice that you are using Internet Explorer, which is not supported by Xenbase and may cause the site to display incorrectly.
We suggest using a current version of Chrome,
FireFox, or Safari.
???displayArticle.abstract???
Understanding the genetic programs underlying neural development is an important goal of developmental and stem cell biology. In the amphibian blastula, cells from the roof of the blastocoel are pluripotent. These cells can be isolated, and programmed to generate various tissues through manipulation of genes expression or induction by morphogens. In this manuscript protocols are described for the use of Xenopus laevis blastocoel roof explants as an assay system to investigate key in vivo and in vitro features of early neural development. These protocols allow the investigation of fate acquisition, cell migration behaviors, and cell autonomous and non-autonomous properties. The blastocoel roof explants can be cultured in a serum-free defined medium and grafted into host embryos. This transplantation into an embryo allows the investigation of the long-term lineage commitment, the inductive properties, and the behavior of transplanted cells in vivo. These assays can be exploited to investigate molecular mechanisms, cellular processes and gene regulatory networks underlying neural development. In the context of regenerative medicine, these assays provide a means to generate neural-derived cell types in vitro that could be used in drug screening.
???displayArticle.pubmedLink???
26863402 ???displayArticle.pmcLink???PMC4781719 ???displayArticle.link???J Vis Exp
Afouda,
Xenopus explants as an experimental model system for studying heart development.
2009, Pubmed,
Xenbase
Afouda,
Xenopus explants as an experimental model system for studying heart development.
2009,
Pubmed
,
Xenbase Afouda,
Stem-cell-like embryonic explants to study cardiac development.
2012,
Pubmed
,
Xenbase Beccari,
The logic of gene regulatory networks in early vertebrate forebrain patterning.
2013,
Pubmed Coffman,
Xotch, the Xenopus homolog of Drosophila notch.
1990,
Pubmed
,
Xenbase Franklin Hughes,
The effects of early tectal lesions on development in the retinal gonglion cell layer of chick embryos.
1975,
Pubmed Green,
Responses of embryonic Xenopus cells to activin and FGF are separated by multiple dose thresholds and correspond to distinct axes of the mesoderm.
1992,
Pubmed
,
Xenbase Harland,
Neural induction.
2000,
Pubmed
,
Xenbase Harland,
Xenopus research: metamorphosed by genetics and genomics.
2011,
Pubmed
,
Xenbase Harland,
In situ hybridization: an improved whole-mount method for Xenopus embryos.
1991,
Pubmed
,
Xenbase Heasman,
Patterning the early Xenopus embryo.
2006,
Pubmed
,
Xenbase Holland,
Evolution of bilaterian central nervous systems: a single origin?
2013,
Pubmed Juraver-Geslin,
Early development of the neural plate: new roles for apoptosis and for one of its main effectors caspase-3.
2015,
Pubmed
,
Xenbase Juraver-Geslin,
The conserved barH-like homeobox-2 gene barhl2 acts downstream of orthodentricle-2 and together with iroquois-3 in establishment of the caudal forebrain signaling center induced by Sonic Hedgehog.
2014,
Pubmed
,
Xenbase Juraver-Geslin,
Barhl2 limits growth of the diencephalic primordium through Caspase3 inhibition of beta-catenin activation.
2011,
Pubmed
,
Xenbase Kiecker,
A morphogen gradient of Wnt/beta-catenin signalling regulates anteroposterior neural patterning in Xenopus.
2001,
Pubmed
,
Xenbase Martinez-Ferre,
Molecular regionalization of the diencephalon.
2012,
Pubmed Milet,
Pax3 and Zic1 drive induction and differentiation of multipotent, migratory, and functional neural crest in Xenopus embryos.
2013,
Pubmed
,
Xenbase Milet,
Dissection of Xenopus laevis neural crest for in vitro explant culture or in vivo transplantation.
2014,
Pubmed
,
Xenbase Nieuwkoop,
The neural induction process; its morphogenetic aspects.
1999,
Pubmed Pani,
Ancient deuterostome origins of vertebrate brain signalling centres.
2012,
Pubmed Pera,
Active signals, gradient formation and regional specificity in neural induction.
2014,
Pubmed
,
Xenbase Pratt,
Modeling human neurodevelopmental disorders in the Xenopus tadpole: from mechanisms to therapeutic targets.
2013,
Pubmed
,
Xenbase Puelles,
Forebrain gene expression domains and the evolving prosomeric model.
2003,
Pubmed Rubenstein,
The embryonic vertebrate forebrain: the prosomeric model.
1994,
Pubmed Sasai,
Bridging the gap from frog research to human therapy: a tale of neural differentiation in Xenopus animal caps and human pluripotent cells.
2008,
Pubmed
,
Xenbase Scholpp,
Building a bridal chamber: development of the thalamus.
2010,
Pubmed Sive,
Removing the Vitelline Membrane from Xenopus laevis Embryos.
2007,
Pubmed
,
Xenbase Sive,
Dissociation and Reaggregation of Xenopus laevis Animal Caps.
2007,
Pubmed
,
Xenbase Sive,
Animal Cap Isolation from Xenopus laevis.
2007,
Pubmed
,
Xenbase Sive,
Embryo dissection and micromanipulation tools.
2007,
Pubmed Stern,
Neural induction: old problem, new findings, yet more questions.
2005,
Pubmed
,
Xenbase Theveneau,
Beads on the run: beads as alternative tools for chemotaxis assays.
2011,
Pubmed
,
Xenbase Turner,
Expression of achaete-scute homolog 3 in Xenopus embryos converts ectodermal cells to a neural fate.
1994,
Pubmed
,
Xenbase Wallingford,
Calcium signaling during convergent extension in Xenopus.
2001,
Pubmed
,
Xenbase Wilson,
Induction of epidermis and inhibition of neural fate by Bmp-4.
1995,
Pubmed
,
Xenbase Wilson,
Early steps in the development of the forebrain.
2004,
Pubmed