Drs. Hoyle, Tang, and Wiellette contributed equally to this study, and are, therefore, listed in alphabetical order.
Research Article
You have full text access to this OnlineOpen article
nlz Gene family is required for hindbrain patterning in the zebrafish
Article first published online: 25 FEB 2004
DOI: 10.1002/dvdy.20001
Copyright © 2004 Wiley-Liss, Inc.
Additional Information
How to Cite
Hoyle, J., Tang, Y. P., Wiellette, E. L., Wardle, F. C. and Sive, H. (2004), nlz Gene family is required for hindbrain patterning in the zebrafish. Dev. Dyn., 229: 835–846. doi: 10.1002/dvdy.20001
- §
Drs. Hoyle, Tang, and Wiellette contributed equally to this study, and are, therefore, listed in alphabetical order.
Publication History
- Issue published online: 15 MAR 2004
- Article first published online: 25 FEB 2004
- Manuscript Accepted: 31 OCT 2003
- Manuscript Revised: 17 OCT 2003
- Manuscript Received: 25 JUL 2003
Funded by
- Wellcome Trust Fellowship. Grant Number: 050320/Z/97/Z
- NIH. Grant Numbers: HD08704, MH59942
- Herman and Margaret Sokol Fellowship in Biomedical Research
REFERENCES
- , , , , , . 1996. Ectopic expression of Hoxa-1 in the zebrafish alters the fate of the mandibular arch neural crest and phenocopies a retinoic acid-induced phenotype. Development 122: 735–746.
- , , . 2001. Cloning and expression of noz1, a zebrafish zinc finger gene related to Drosophila nocA. Mech Dev 104: 117–120.
- , , , , . 1994. Green fluorescent protein as a marker for gene expression. Science 263: 802–805.
- , , , , , . 1994. The Drosophila l(2)35Ba/nocA gene encodes a putative Zn finger protein involved in the development of the embryonic brain and the adult ocellar structures. Mol Cell Biol 14: 1487–1499.
- , , . 2002. Meis family proteins are required for hindbrain development in the zebrafish. Development 129: 585–595.
- , . 2002. Boundary foundation in the hindbrain: Eph only it were simple. Trends Neurosci 25: 260–267.
- , , , , . 2002. Elbow and Noc define a family of zinc finger proteins controlling morphogenesis of specific tracheal branches. Development 129: 3585–3596.
- , . 2001. Hindbrain patterning involves graded responses to retinoic acid signalling. Development 128: 2199–2208.
- , . 2002. Comparative analysis of somitogenesis related genes of the hairy/Enhancer of split class in Fugu and zebrafish. BMC Genomics 3: 21.
- , . 1997. Identification of otx2 target genes and restrictions in ectodermal competence during Xenopus cement gland formation. Development 124: 471–481.
- , . 2000. Vertebrate anteroposterior patterning: the Xenopus neurectoderm as a paradigm. Bioessays 22: 976–986.
- , . 2000. Retinoid signalling and hindbrain patterning. Curr Opin Genet Dev 10: 380–386.
- , , , . 1998. Determination of the zebrafish forebrain: induction and patterning. Development 125: 4403–4416.
- , , , , , , , . 2002. spiel ohne grenzen/pou2 is required for zebrafish hindbrain segmentation. Development 129: 1645–1655.
- , , , . 1996. Zinc finger proteins in early Xenopus development. Int J Dev Biol 40: 291–295.
- , , . 1993. Use of a conditional MyoD transcription factor in studies of MyoD trans-activation and muscle determination. Proc Natl Acad Sci U S A 90: 8028–8032.
- , . 1997. Retinoids and posterior neural induction: a reevaluation of Nieuwkoop's two-step hypothesis. Cold Spring Harb Symp Quant Biol 62: 511–521.
- , , , , , , . 1998. Opl: a zinc finger protein that regulates neural determination and patterning in Xenopus. Development 125: 2867–2882.
- , . 2002. Characterization of a novel mammalian Groucho isoform and its role in transcriptional regulation. J Biol Chem 277: 47732–47740.
- , . 1998. A series of no isthmus (noi) alleles of the zebrafish pax2a gene reveals multiple signaling events in development of the midbrain-hindbrain boundary. Development 125: 3049–3062.
- . 2001. The isthmic organizer and brain regionalization. Int J Dev Biol 45: 367–371.
- , , . 2002. FGF3 and FGF8 mediate a rhombomere 4 signaling activity in the zebrafish hindbrain. Development 129: 3825–3837.
- , , . 2002. Knockdown of duplicated zebrafish hoxb1 genes reveals distinct roles in hindbrain patterning and a novel mechanism of duplicate gene retention. Development 129: 2339–2354.
- , . 2002. Constructing the hindbrain: insights from the zebrafish. Dev Dyn 224: 1–17.
- , . 1994. Normal table of Xenopus laevis (Daudin): a systematical and chronological survey of the development from the fertilized egg till the end of metamorphosis. New York: Garland Publishing Inc. 252 p
- , , . 2001. Local action of long-range repressors in the Drosophila embryo. EMBO J 20: 2246–2253.
- , , , , , , . 1994. Groucho is required for Drosophila neurogenesis, segmentation, and sex determination and interacts directly with hairy-related bHLH proteins. Cell 79: 805–815.
- . 2002. The Hox paradox: more complex(es) than imagined. Dev Biol 249: 1–15.
- , . 2001. The midbrain-hindbrain boundary organizer. Curr Opin Neurobiol 11: 34–42.
- , , . 1991. A conserved family of nuclear phosphoproteins localized to sites of polymerase II transcription. J Cell Biol 115: 587–596.
- , . 2003. Nlz belongs to a family of zinc-finger-containing repressors and controls segmental gene expression in the zebrafish hindbrain. Dev Biol 262: 254–267.
- , , , . 2001. Isolation and characterization of posteriorly restricted genes in the zebrafish gastrula. Dev Dyn 220: 402–408.Direct Link:
- , , . 1998. How to build a vertebrate hindbrain. Lessons from genetics. C R Acad Sci III 321: 819–834.
- , , , , , , , . 2002. Analyses of the extent of shared synteny and conserved gene orders between the genome of Fugu rubripes and human 20q. Genome Res 12: 776–784.
- , . 2001. vhnf1, the MODY5 and familial GCKD-associated gene, regulates regional specification of the zebrafish gut, pronephros, and hindbrain. Genes Dev 15: 3217–3229.
- , , . 2001. Meis3 synergizes with Pbx4 and Hoxb1b in promoting hindbrain fates in the zebrafish. Development 128: 1299–1312.
- , , , , . 2002. Establishment of hindbrain segmental identity requires signaling by FGF3 and FGF8. Curr Biol 12: 1117–1123.
- , , . 2002. Eliminating zebrafish Pbx proteins reveals a hindbrain ground state. Dev Cell 3: 723–733.
- , , , , , , . 1997. Specification of the anterior hindbrain and establishment of a normal mid/hindbrain organizer is dependent on Gbx2 gene function. Development 124: 2923–2934.
- . 1995. The zebrafish book: a guide for the laboratory use of zebrafish (Danio rerio). Eugene: University of Oregon Press.
- , , , . 2000. Vitamin A deficiency results in the dose-dependent acquisition of anterior character and shortening of the caudal hindbrain of the rat embryo. Dev Biol 220: 263–284.
- , , , . 2002. Development of the Zebrafish inner ear. Dev Dyn 223: 427–458.
- , . 2003. vhnf1 and Fgf signals synergize to specify rhombomere identity in the zebrafish hindbrain. Development 130: 3821–3829.
- , . 1998. Specification of the hindbrain fate in the zebrafish. Dev Biol 197: 283–296.

1097-0177/asset/DVDY_left.gif?v=1&s=b87335326ab8ecd1f573539da0b5fa6abef26532)
