|
|
|
|||
| Home Help Feedback Subscriptions Archive Search Table of Contents | ||||
Development, Vol 125, Issue 22 4403-4416, Copyright © 1998 by Company of Biologists
JOURNAL ARTICLES |
Y Grinblat, J Gamse, M Patel and H Sive
Whitehead Institute for Biomedical Research and Massachusetts Institute of Technology, Nine Cambridge Center, Cambridge, MA 02142, USA.
We report an analysis of forebrain determination and patterning in the zebrafish Danio rerio. In order to study these events, we isolated zebrafish homologs of two neural markers, odd-paired-like (opl), which encodes a zinc finger protein, and fkh5, which encodes a forkhead domain protein. At mid-gastrula, expression of these genes defines a very early pattern in the presumptive neurectoderm, with opl later expressed in the telencephalon, and fkh5 in the diencephalon and more posterior neurectoderm. Using in vitro explant assays, we show that forebrain induction has occurred even earlier, by the onset of gastrulation (shield stage). Signaling from the early gastrula shield, previously shown to be an organizing center, is sufficient for activation of opl expression in vitro. In order to determine whether the organizer is required for opl regulation, we removed from late blastula stage embryos either the presumptive prechordal plate, marked by goosecoid (gsc) expression, or the entire organizer, marked by chordin (chd) expression. opl was correctly expressed after removal of the presumptive prechordal plate and consistently, opl was correctly expressed in one-eyed pinhead (oep) mutant embryos, where the prechordal plate fails to form. However, after removal of the entire organizer, no opl expression was observed, indicating that this region is crucial for forebrain induction. We further show that continued organizer function is required for forebrain induction, since beads of BMP4, which promotes ventral fates, also prevented opl expression when implanted during gastrulation. Our data show that forebrain specification begins early during gastrulation, and that a wide area of dorsal mesendoderm is required for its patterning.
This article has been cited by other articles:
![]() |
F. K. Noubissi, S. Goswami, N. A. Sanek, K. Kawakami, T. Minamoto, A. Moser, Y. Grinblat, and V. S. Spiegelman Wnt Signaling Stimulates Transcriptional Outcome of the Hedgehog Pathway by Stabilizing GLI1 mRNA Cancer Res., November 15, 2009; 69(22): 8572 - 8578. [Abstract] [Full Text] [PDF] |
||||
![]() |
D. Maurus and W. A. Harris Zic-associated holoprosencephaly: zebrafish Zic1 controls midline formation and forebrain patterning by regulating Nodal, Hedgehog, and retinoic acid signaling Genes & Dev., June 15, 2009; 23(12): 1461 - 1473. [Abstract] [Full Text] [PDF] |
||||
![]() |
H. Lee, B. G. Stultz, and D. A. Hursh The Zic family member, odd-paired, regulates the Drosophila BMP, decapentaplegic, during adult head development Development, April 1, 2007; 134(7): 1301 - 1310. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. K. Nyholm, S.-F. Wu, R. I. Dorsky, and Y. Grinblat The zebrafish zic2a-zic5 gene pair acts downstream of canonical Wnt signaling to control cell proliferation in the developing tectum Development, February 15, 2007; 134(4): 735 - 746. [Abstract] [Full Text] [PDF] |
||||
![]() |
R. W. Koster and S. E. Fraser FGF signaling mediates regeneration of the differentiating cerebellum through repatterning of the anterior hindbrain and reinitiation of neuronal migration. J. Neurosci., July 5, 2006; 26(27): 7293 - 7304. [Abstract] [Full Text] [PDF] |
||||
![]() |
M.-C. Ramel and A. C. Lekven Repression of the vertebrate organizer by Wnt8 is mediated by Vent and Vox Development, August 15, 2004; 131(16): 3991 - 4000. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. Walshe and I. Mason Unique and combinatorial functions of Fgf3 and Fgf8 during zebrafish forebrain development Development, September 15, 2003; 130(18): 4337 - 4349. [Abstract] [Full Text] [PDF] |
||||
![]() |
R. I. Dorsky, M. Itoh, R. T. Moon, and A. Chitnis Two tcf3 genes cooperate to pattern the zebrafish brain Development, May 1, 2003; 130(9): 1937 - 1947. [Abstract] [Full Text] [PDF] |
||||
![]() |
T. Kudoh, S. W. Wilson, and I. B. Dawid Distinct roles for Fgf, Wnt and retinoic acid in posteriorizing the neural ectoderm Development, March 11, 2003; 129(18): 4335 - 4346. [Abstract] [Full Text] [PDF] |
||||
![]() |
S.-H. Kim, J. Shin, H.-C. Park, S.-Y. Yeo, S.-K. Hong, S. Han, M. Rhee, C.-H. Kim, A. B. Chitnis, and T.-L. Huh Specification of an anterior neuroectoderm patterning by Frizzled8a-mediated Wnt8b signalling during late gastrulation in zebrafish Development, January 10, 2002; 129(19): 4443 - 4455. [Abstract] [Full Text] [PDF] |
||||
![]() |
Z. M. Varga, A. Amores, K. E. Lewis, Y.-L. Yan, J. H. Postlethwait, J. S. Eisen, and M. Westerfield Zebrafish smoothened functions in ventral neural tube specification and axon tract formation Development, September 15, 2001; 128(18): 3497 - 3509. [Abstract] [Full Text] [PDF] |
||||
![]() |
C. E. Erter, T. P. Wilm, N. Basler, C. V. E. Wright, and L. Solnica-Krezel Wnt8 is required in lateral mesendodermal precursors for neural posteriorization in vivo Development, September 15, 2001; 128(18): 3571 - 3583. [Abstract] [Full Text] [PDF] |
||||
![]() |
P. Blader and U. Strahle Zebrafish developmental genetics and central nervous system development Hum. Mol. Genet., April 1, 2000; 9(6): 945 - 951. [Abstract] [Full Text] [PDF] |
||||
![]() |
O Kazanskaya, A Glinka, and C Niehrs The role of Xenopus dickkopf1 in prechordal plate specification and neural patterning Development, January 11, 2000; 127(22): 4981 - 4992. [Abstract] [PDF] |
||||
![]() |
L Saude, K Woolley, P Martin, W Driever, and D. Stemple Axis-inducing activities and cell fates of the zebrafish organizer Development, January 8, 2000; 127(16): 3407 - 3417. [Abstract] [PDF] |
||||
![]() |
A Camus, B. Davidson, S Billiards, P Khoo, J. Rivera-Perez, M Wakamiya, R. Behringer, and P. Tam The morphogenetic role of midline mesendoderm and ectoderm in the development of the forebrain and the midbrain of the mouse embryo Development, January 5, 2000; 127(9): 1799 - 1813. [Abstract] [PDF] |
||||
![]() |
Z. Varga, J Wegner, and M Westerfield Anterior movement of ventral diencephalic precursors separates the primordial eye field in the neural plate and requires cyclops Development, January 12, 1999; 126(24): 5533 - 5546. [Abstract] [PDF] |
||||
![]() |
F Ristoratore, M Carl, K Deschet, L Richard-Parpaillon, D Boujard, J Wittbrodt, D Chourrout, F Bourrat, and J. Joly The midbrain-hindbrain boundary genetic cascade is activated ectopically in the diencephalon in response to the widespread expression of one of its components, the medaka gene Ol-eng2 Development, January 9, 1999; 126(17): 3769 - 3779. [Abstract] [PDF] |
||||
![]() |
K. Mizugishi, J. Aruga, K. Nakata, and K. Mikoshiba Molecular Properties of Zic Proteins as Transcriptional Regulators and Their Relationship to GLI Proteins J. Biol. Chem., January 12, 2001; 276(3): 2180 - 2188. [Abstract] [Full Text] [PDF] |
||||