Caudalization of neural fate by tissue recombination and bFGF
- PMID: 8575335
- DOI: 10.1242/dev.121.12.4349
Caudalization of neural fate by tissue recombination and bFGF
Abstract
In order to study anteroposterior neural patterning in Xenopus embryos, we have developed a novel assay using explants and tissue recombinants of early neural plate. We show, by using region-specific neural markers and lineage tracing, that posterior axial tissue induces midbrain and hindbrain fates from prospective forebrain. The growth factor bFGF mimics the effect of the posterior dorsal explant in that it (i) induces forebrain to express hindbrain markers, (ii) induces prospective hindbrain explants to make spinal cord, but not forebrain and midbrain, and (iii) induces posterior neural fate in ectodermal explants neuralized by the dominant negative activin receptor and follistatin without mesoderm induction. The competence of forebrain explants to respond to both posterior axial explants and bFGF is lost by neural groove stages. These findings demonstrate that posterior neural fate can be derived from anterior neural tissue, and identify a novel activity for the growth factor bFGF in neural patterning. Our observations suggest that full anteroposterior neural patterning may be achieved by caudalization of prospective anterior neural fate in the vertebrate embryo.
Similar articles
-
Fibroblast growth factor is a direct neural inducer, which combined with noggin generates anterior-posterior neural pattern.Development. 1995 Nov;121(11):3627-36. doi: 10.1242/dev.121.11.3627. Development. 1995. PMID: 8582276
-
bFGF as a possible morphogen for the anteroposterior axis of the central nervous system in Xenopus.Development. 1995 Sep;121(9):3121-30. doi: 10.1242/dev.121.9.3121. Development. 1995. PMID: 7555736
-
FGF is required for posterior neural patterning but not for neural induction.Dev Biol. 1999 Jan 15;205(2):296-308. doi: 10.1006/dbio.1998.9108. Dev Biol. 1999. PMID: 9917365
-
Regional neural induction in Xenopus laevis.Bioessays. 1990 Dec;12(12):591-6. doi: 10.1002/bies.950121206. Bioessays. 1990. PMID: 2080914 Review.
-
Neural patterning in the vertebrate embryo.Int Rev Cytol. 2001;203:447-82. doi: 10.1016/s0074-7696(01)03013-3. Int Rev Cytol. 2001. PMID: 11131523 Review.
Cited by
-
XenDB: full length cDNA prediction and cross species mapping in Xenopus laevis.BMC Genomics. 2005 Sep 14;6:123. doi: 10.1186/1471-2164-6-123. BMC Genomics. 2005. PMID: 16162280 Free PMC article.
-
Opposite phenotypes of hypomorphic and Y766 phosphorylation site mutations reveal a function for Fgfr1 in anteroposterior patterning of mouse embryos.Genes Dev. 1998 Aug 1;12(15):2332-44. doi: 10.1101/gad.12.15.2332. Genes Dev. 1998. PMID: 9694798 Free PMC article.
-
Endoderm induction by the organizer-secreted factors chordin and noggin in Xenopus animal caps.EMBO J. 1996 Sep 2;15(17):4547-55. EMBO J. 1996. PMID: 8887546 Free PMC article.
-
Growth differentiation factor 11 is an encephalic regionalizing factor in neural differentiated mouse embryonic stem cells.BMC Res Notes. 2014 Oct 29;7:766. doi: 10.1186/1756-0500-7-766. BMC Res Notes. 2014. PMID: 25352416 Free PMC article.
-
Genome-wide identification of Wnt/β-catenin transcriptional targets during Xenopus gastrulation.Dev Biol. 2017 Jun 15;426(2):165-175. doi: 10.1016/j.ydbio.2016.03.021. Epub 2016 Apr 16. Dev Biol. 2017. PMID: 27091726 Free PMC article.
Publication types
MeSH terms
Substances
Grants and funding
LinkOut - more resources
Full Text Sources
Other Literature Sources