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JOURNAL ARTICLES
Expression of the zebrafish gene hlx-1 in the prechordal plate and during CNS development
A. Fjose, J.C. Izpisua-Belmonte, C. Fromental-Ramain, D. Duboule
Development 1994 120: 71-81;
A. Fjose
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J.C. Izpisua-Belmonte
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C. Fromental-Ramain
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D. Duboule
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Summary

The zebrafish hlx-1 gene belongs to the H2.0 subfamily of homeobox genes and is closely related to the mouse Dbx gene with respect to both homeodomain homology (96.7%) and neural expression during embryogenesis. Analysis of hlx-1 expression by in situ hybridization reveals several particularly interesting features. In late gastrula embryos, hlx-1 transcripts are detected within a circular area in the region of the presumptive rostral brain. Subsequently, the expression domain becomes restricted to the hypoblast and undergoes dynamic changes involving conversion into a longitudinal stripe which elongates and retracts following a temporal sequence. The site of transient hlx-1 expression along the ventral midline of the rostral neurectoderm, which in part corresponds to the prechordal plate, suggests a role in the determination of head mesoderm as well as in patterning of the rostral brain. As the midline stripe gradually disappears, the hlx-1 gene becomes regionally expressed within the diencephalon and at a specific dorsoventral level along the hindbrain and spinal cord. In the hindbrain, expression is initiated in dorsoventrally restricted transversal stripes which correlate with the segmental pattern of rhombomeres. The stripes fuse into bilateral columns that are later converted to two series of paired transversal stripes at the rhombomere borders. This pattern is consistent with the proposed subdivision of hindbrain segments into rhombomere centers separated by border regions.

REFERENCES

    1. Allen J. D.,
    2. Lints T.,
    3. Jenkins N. A.,
    4. Copeland N. G.,
    5. Strasser A.,
    6. Harvey R. P.,
    7. Adams J. M.
    (1991) Novel murine homeobox gene on chromosome 1 expressed in specific hematopoietic lineages and during embryogenesis. GenesDev 5, 509–530
    OpenUrlAbstract/FREE Full Text
    1. Barad M.,
    2. Jack T.,
    3. Chadwick R.,
    4. McGinnis W.
    (1988) A novel, tissue-specific, Drosophila homeobox gene. EMBOJ 7, 2151–2161
    OpenUrlPubMed
    1. Bastian H.,
    2. Gruss P.
    (1990) A murine even-skipped homologue, Evx1, is expressed during early embryogenesis and neurogenesis in a biphasic manner. EMBOJ 9, 1839–1852
    OpenUrlPubMedWeb of Science
    1. Bernhardt R. R.,
    2. Chitnis A. B.,
    3. Lindamer L.,
    4. Kuwada J. Y.
    (1990) Identification of spinal neurons in the embryonic and larval zebrafish. J. Comp. Neurol 302, 603–616
    OpenUrl
    1. Chitnis A. B.,
    2. Kuwada J. Y.
    (1990) Axonogenesis in the brain of zebrafish embryos. J. Neurosci 10, 1892–1905
    OpenUrl
    1. Cho K. W. Y.,
    2. Blumberg B.,
    3. Steinbeisser H.,
    4. DeRobertis E. M.
    (1991) Molecular nature of the Spemann's organizer: the role of the Xenopus homeobox gene goosecoid. Cell 67, 1111–1120
    OpenUrlCrossRefPubMedWeb of Science
    1. Davis C. A.,
    2. Noble-Topham S. E.,
    3. Rossant J.,
    4. Joyner A.
    (1988) Expression of the homeobox-containing gene En-2 delineates a specific region in the developing mouse brain. GenesDev 2, 361–371
    OpenUrlAbstract/FREE Full Text
    1. Dirksen M. L.,
    2. Jamrich M.
    (1992) A novel, activin-inducible, blastopore-lip specific gene of Xenopuslaevis contains a forkedhead DNA-binding domain. GenesDev 6, 599–608
    OpenUrlAbstract/FREE Full Text
    1. Figdor M. C.,
    2. Stern C. D.
    (1993) Segmental organization of embryonic diencephalon. Nature 363, 630–634
    OpenUrlCrossRefPubMed
    1. Fjose A.,
    2. Njølstad P. R.,
    3. Nornes S.,
    4. Molven A.,
    5. Krauss S.
    (1992) Structure and early embryonic expression of the zebrafish engrailed-2 gene. Mech. Dev 39, 51–62
    OpenUrlPubMed
    1. Fjose A.,
    2. Nornes S.,
    3. Weber U.,
    4. Mlodzik M.
    (1993) Functional conservation of vertebrate seven-up related genes in neurogenesis and eye development. EMBOJ 12, 1403–1414
    OpenUrlPubMedWeb of Science
    1. Goulding M. D.,
    2. Lumsden A.,
    3. Gruss P.
    (1993) Signals from the notochord and floor plate regulate the region-specific expression of two Pax genes in the developing spinal cord. Development 117, 1001–1016
    OpenUrlAbstract
    1. Gruss P.,
    2. Walther C.
    (1992) Pax genes in development. Cell 69, 719–722
    OpenUrlCrossRefPubMedWeb of Science
    1. Hanneman E.,
    2. Trevarrow B.,
    3. Metcalf W. K.,
    4. Kimmel C. B.,
    5. Westerfield M.
    (1988) Segmental pattern of development of the hindbrain and spinal cord of the zebrafish embryo. Development 103, 49–58
    OpenUrlAbstract
    1. Hatta K.,
    2. Kimmel C. B.,
    3. Ho R. K.,
    4. Walker C.
    (1991) The cyclops mutation blocks specification of the floor plate of the zebrafish central nervous system. Nature 350, 339–341
    OpenUrlCrossRefPubMed
    1. Hatta K.
    (1992) Role of the floor plate in axonal patterning in the zebrafish CNS. Neuron 9, 629–642
    OpenUrlCrossRefPubMedWeb of Science
    1. Kimmel C. B.,
    2. Warga R. M.,
    3. Schilling T. F.
    (1990) Origin and organization of the zebrafish fate map. Development 108, 581–594
    OpenUrlAbstract/FREE Full Text
    1. Krauss S.,
    2. Johansen T.,
    3. Korzh V.,
    4. Fjose A.
    (1991) Expression pattern of zebrafish pax genes suggests a role in early brain regionalization. Nature 353, 267–270
    OpenUrlCrossRefPubMed
    1. Krauss S.,
    2. Johansen T.,
    3. Korzh V.,
    4. Fjose A.
    (1991) Expression of the zebrafish paired box gene pax[zf-b] during early neurogenesis. Development 113, 1193–1206
    OpenUrlAbstract
    1. Krauss S.,
    2. Johansen T.,
    3. Korzh V.,
    4. Moens U.,
    5. Ericson J. U.,
    6. Fjose A.
    (1991) Zebrafish pax[zf-a]: a paired box-containing gene expressed in the neural tube. EMBOJ 10, 3609–3619
    OpenUrlPubMedWeb of Science
    1. Kuwada J. Y.,
    2. Bernhardt R. R.
    (1990) Axonal outgrowth by identified neurons in the spinal cord of zebrafish embryos. Exp. Neurol 109, 29–34
    OpenUrl
    1. MacDonald R. J.,
    2. Swift G. H.,
    3. Przybyla A. E.,
    4. Chirgwin J. M.
    (1987) Isolation of RNA using guanidinium salts. MethodsEnzymol 152, 219–226
    OpenUrlPubMedWeb of Science
    1. McGinnis W.,
    2. Garber R. L.,
    3. Wirz J.,
    4. Kuroiwa A.,
    5. Gehring W. J.
    (1984) A homologous protein-coding sequence in Drosophila homeotic genes and its conservation in other metazoans. Cell 37, 403–408
    OpenUrlCrossRefPubMedWeb of Science
    1. McGinnis W.,
    2. Krumlauf R.
    (1992) Homeobox genes and axial patterning. Cell 68, 283–302
    OpenUrlCrossRefPubMedWeb of Science
    1. Meier S.
    (1981) Development of the chick embryo mesoblast: morphogenesis of the prechordal plate and cranial segments. Dev. Biol 83, 49–61
    OpenUrl
    1. Metcalfe W. K.,
    2. Myers P. Z.,
    3. Trevarrow B.,
    4. Bass M. B.,
    5. Kimmel C. B.
    (1990) Primary neurons that express the L2/HNK-1 carbohydrate during early development in zebrafish. Development 110, 491–504
    OpenUrlAbstract/FREE Full Text
    1. Mikkola I.,
    2. Fjose A.,
    3. Kuwada J. Y.,
    4. Wilson S.,
    5. Guddal P. H.,
    6. Krauss S.
    (1992) The paired domain-containing nuclear factor pax[b] is expressed in specific commissural interneurons in zebrafish embryos. J. Neurobiol 23, 933–946
    OpenUrl
    1. Porteus M. H.,
    2. Bulfone A.,
    3. Ciaranello R. D.,
    4. Rubenstein J. L. R.
    (1991) Isolation and characterization of a novel cDNA clone encoding a homeodomain that is developmentally regulated in the ventral forebrain. Neuron 7, 221–229
    OpenUrlCrossRefPubMedWeb of Science
    1. Price M.,
    2. Lemaistre M.,
    3. Pischetola M.,
    4. Di Lauro R.,
    5. Duboule D.
    (1991) A mouse gene related to Distal - less shows a restricted expression in the developing forebrain. Nature 351, 748–751
    OpenUrlCrossRefPubMed
    1. Puschel A. W.,
    2. Gruss P.,
    3. Westerfield M.
    (1992) Sequence and expression pattern of pax-6 are highly conserved between zebrafish and mice. Development 114, 643–651
    OpenUrlAbstract
    1. Ruberte E.,
    2. Friederich V.,
    3. Morriss-Kay G.,
    4. Chambon P.
    (1992) Differential distribution patterns of CRABP I and CRABP II transcripts during mouse embryogenesis. Development 115, 973–987
    OpenUrlAbstract
    1. Ruiz i Altaba A.
    (1992) Planar and vertical signals in the induction and patterning of the Xenopus nervous system. Development 116, 67–80
    OpenUrlAbstract
    1. Simeone A.,
    2. Acampora D.,
    3. Gulisano M.,
    4. Stornaiuolo A.,
    5. Boncinelli E.
    (1992) Nested expression domains of four homeobox genes in developing rostral brain. Nature 358, 687–690
    OpenUrlCrossRefPubMed
    1. Stuart G. W.,
    2. McMurray J. V.,
    3. Westerfield M.
    (1988) Replication, integration and stable germ-line transmission of foreign sequences injected into early zebrafish embryos. Development 103, 403–412
    OpenUrlAbstract
    1. Tam P. P. L.,
    2. Meier S.,
    3. Jacobson A.
    (1982) Differentiation of the metameric pattern in the embryonic axis of the mouse. II. Somitomeric organization of the presomitic mesoderm. Differentiation 21, 109–122
    OpenUrlCrossRefPubMed
    1. Trevarrow B.,
    2. Marks D. L.,
    3. Kimmel C. B.
    (1990) Organization of hindbrain segments in the zebrafish embryo. Neuron 4, 669–679
    OpenUrlCrossRefPubMedWeb of Science
    1. Wilkinson D.,
    2. Bhatt S.,
    3. Chavrier,
    4. Bravo R.,
    5. Charnay P.
    (1989) Segment-specific expression of a zinc finger gene in the developing nervous system of the mouse. Nature 337, 461–464
    OpenUrlCrossRefPubMed
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JOURNAL ARTICLES
Expression of the zebrafish gene hlx-1 in the prechordal plate and during CNS development
A. Fjose, J.C. Izpisua-Belmonte, C. Fromental-Ramain, D. Duboule
Development 1994 120: 71-81;
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JOURNAL ARTICLES
Expression of the zebrafish gene hlx-1 in the prechordal plate and during CNS development
A. Fjose, J.C. Izpisua-Belmonte, C. Fromental-Ramain, D. Duboule
Development 1994 120: 71-81;

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