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Altman, J. and Bayer, S (1982). Development of the cranial nerve ganglia and related nuclei in the rat. In. Advances in Anatomy, Embryology and Cell Biology, 74, 1-90.[Medline]

Beck, E., Ludwig, G., Auserwald, E. A., Reiss, B. and Schaller, H (1982). Nucleotide sequence and exact localization of the neomycin phosphotransferase gene from transposon Tn5. Gene 19, 327-336.[Medline]

Boulet, A. M. and Capecchi, M. R (1996). Targeted disruption of hoxc-4 causes esophageal defects and vertebral transformations. Dev. Biol 177, 232-249.[Medline]

Carpenter, E. M., Goddard, J. M., Chisaka, O., Manley, N. R. and Capecchi, M. R (1993). Loss of Hox-A1 ( Hox-1.6 ) function results in the reorganization of the murine hindbrain. Development 118, 1063-1075.[Abstract]

Chisaka, O. and Capecchi, M. R (1991). Regionally restricted developmental defects resulting from targeted disruption of the mouse homeobox gene hox-1.5. Nature 350, 473-479.[Medline]

Chisaka, O., Musci, T. S. and Capecchi, M. R (1992). Developmental defects of the ear, cranial nerves and hindbrain resulting from targeted disruption of the mouse homeobox gene Hox-1.6. Nature 355, 516-520.[Medline]

Davis, A. P. and Capecchi, M. R (1994). Axial homeosis and appendicular skeleton defects in mice with a targeted disruption of hoxd-11. Development 120, 2187-2198.[Abstract]

Davis, A. P., Witte, D. P., Hsieh-Li, H. M., Potter, S. S. and Capecchi, M. R (1995). Absence of radius and ulna in mice lacking hoxa-11 and hoxd-11. Nature 375, 791-795.[Medline]

Davis, A. P. and Capecchi, M. R (1996). A mutational analysis of the 5Hox D genes: Dissection of genetic interactions during limb development in the mouse. Development 122, 1175-1185.[Abstract]

Dodd, J., Morton, S. B., Karagogeos, D., Yamamoto, M. and Jessell, T. M (1988). Spatial regulation of axonal glycoprotein expression on subsets of embryonic spinal neurons. Neuron 1, 105-116.[Medline]

Dolle, P., Izpis\234a-Belmonte, J.-C., Falkenstein, H., Renucci, A. and Duboule, D (1989). Coordinate expression of the murine Hox-5 complex homeobox-containing genes during limb pattern formation. Nature 342, 767-772.[Medline]

Dolle, P., Izpis\234a-Belmonte, J.-C., Boncinelli, E. and Duboule, D (1991). The Hox-4.8 gene is localized at the 5extremity of the Hox-4 complex and is expressed in the most posterior parts of the body during development. Mech. Dev 36, 3-13.[Medline]

Dolle, P., Dierich, A., LeMeur, M., Schimmang, T., Schuhbaur, B., Chambon, P. and Duboule, D (1993). Disruption of the Hoxd-13 gene induces localized heterochrony leading to mice with neotenic limbs. Cell 75, 431-441.[Medline]

Duboule, D. and Dolle, P (1989). The structural and functional organization of the murine Hox gene family resembles that of Drosophila homeotic genes. EMBO J 8, 1497-1505.[Medline]

Eriksson, U., Hansson, E., Nordlinder, H., Busch, C., Sundelin, J. and Peterson, P. A (1987). Quantitation and tissue localization of the cellular retinoic acid-binding protein. J. Cell. Physiol 133, 482-490.[Medline]

Favier, B., Rijli, F. M., Fromental-Ramain, C., Fraulob, V. and Chambon, P (1996). Functional cooperation between the non-paralogous genes Hoxa-10 and Hoxd-11 in the developing forelimb and axial skeleton. Development 122, 449-460.[Abstract]

Frohman, M. A., Boyle, M. and Martin, G. R (1990). Isolation of the mouse Hox-2.9 gene; analysis of embryonic expression suggests that positional information along the anterior-posterior axis is specified by mesoderm. Development 110, 589-607.[Abstract/Free Full Text]

Fromental-Ramain, C., Warot, X., Lakkaraju, S., Favier, B., Haack, H., Birling, C., Dierich, A., Dolle, P. and Chambon, P (1996). Specific and redundant functions of the paralogous Hoxa-9 and Hoxd-9 genes in forelimb and axial skeleton patterning. Development 122, 461-472.[Abstract]

Gendron-Maguire, M., Mallo, M., Zhang, M. and Gridley, T (1993). Hoxa-2 mutant mice exhibit homeotic transformation of skeletal elements derived from cranial neural crest. Cell 75, 1317-1331.[Medline]

Graham, A., Papalopulu, N. and Krumlauf, R (1989). The murine and Drosophila homeobox gene complexes have common features of organization and expression. Cell 57, 367-378.[Medline]

Horan, G. S. B., Ram\222rez-Solis, R., Featherstone, M. S., Wolgemuth, D. J., Bradley, A. and Behringer, R. R (1995). Compound mutants for the paralogous hoxa-4, hoxb-4, and hoxd-4 genes show more complete homeotic transformations and a dose-dependent increase in the number of vertebrae transformed. Genes Dev 9, 1667-1677.[Abstract/Free Full Text]

Hunt, P., Gulisano, M., Cook, M., Sham, M.-H., Faiella, A., Wilkinson, D., Boncinelli, E. and Krumlauf, R (1991). A distinct Hox code for the branchial region of the vertebrate head. Nature 353, 861-864.[Medline]

Izpis\234a-Belmonte, J,-C.,Falkenstein, H., Dolle, P., Renucci, A. and Duboule, D (1991). Murine genes related to the Drosophila AbdB homeotic gene are sequentially expressed during development of the posterior part of the body. EMBO J 10, 2279-2289.[Medline]

Jeannotte, L., Lemieux, M., Charron, J., Poirier, F. and Robertson, E. J (1993). Specification of axial identity in the mouse: role of the Hoxa-5 ( Hox-1.3 ) gene. Genes Dev 7, 2085-2096.[Abstract/Free Full Text]

Kostic, D. and Capecchi, M. R (1994). Targeted disruptions of the murine hoxa-4 and hoxa-6 genes result in homeotic transformations of components of the vertebral column. Mech. Dev 46, 231-247.[Medline]

Kumar, D (1990). Moebius syndrome. J. Med. Genet 27, 122-126.[Medline]

LeMouellic, H., Lallemand, Y. and Br\236let, P (1992). Homeosis in the mouse induced by a null mutation in the Hox-3.1 gene. Cell 69, 251-264.[Medline]

Lewis, E. B (1978). A gene complex controlling segmentation in Drosophila. Nature 276, 565-570.[Medline]

Lufkin, T., Dierich, A., LeMeur, M., Mark, M. and Chambon, P (1991). Disruption of the Hox-1.6 homeobox gene results in defects in a region corresponding to its rostral domain of expression. Cell 66, 1105-1119.[Medline]

Lumsden, A. and Keynes, R (1989). Segmental patterns of neuronal development in the chick hindbrain. Nature 337, 424-428.[Medline]

Maden, M., Horton, C., Graham, A., Leonard, L., Pizzey, J., Siegenthaler, G., Lumsden, A. and Eriksson, U (1992). Domains of cellular retinoic acid-binding protein I (CRA BP I) expression in the hindbrain and neural crest of the mouse embryo. Mech. Dev 37, 13-23.[Medline]

Manley, N. R. and Capecchi, M. R (1995). The role of hoxa-3 in mouse thymus and thyroid development. Development 121, 1989-2003.[Abstract]

Mansour, S. L., Thomas, K. R. and Capecchi, M. R (1988). Disruption of the proto-oncogene int-2 in mouse embryo-derived stem cells: a general strategy for targeting mutations to non-selectable genes. Nature 336, 348-352.[Medline]

Mansour, S. L., Goddard, J. M. and Capecchi, M. R (1993). Mice homozygous for a targeted disruption of the proto-oncogene int-2 have developmental defects in the tail and inner ear. Development 117, 13-28.[Abstract]

Mark, M., Lufkin, T., Vonesch, J.-L., Ruberte, E., Olivo, J.-C., Dolle, P., Gorry, P., Lumsden, A. and Chambon, P (1993). Two rhombomeres are altered in Hoxa-1 mutant mice. Development 119, 319-338.[Abstract]

Marshall, H., Nonchev, S., Sham, M. H., Muchamore, I., Lumsden, A. and Krumlauf, R (1992). Retinoic acid alters hindbrain Hox code and induces transformation of rhombomeres 2/3 into a 4/5 identity. Nature 360, 737-741.[Medline]

Murphy, P. and Hill, R. E (1991). Expression of the mouse labial- likehomeobox-containing genes, Hox-2.9 and Hox-1.6 , during segmentation of the hindbrain. Development 111, 61-74.[Abstract]

Nagy, A., Rossant, J., Nagy, R., Abramow-Newerly, W. and Roder, J. C (1993). Derivation of completely cell culture-derived mice from early-passage embryonic stem cells. Proc. Natl. Acad. Sci. USA 90, 8424-8428.[Abstract/Free Full Text]

Ramirez-Solis, R., Zheng, H., Whiting, J., Krumlauf, R. and Bradley, A (1993). Hoxb-4 ( Hox-2.6 ) mutant mice show homeotic transformation of a cervical vertebra and defects in the closure of the sternal rudiments. Cell 73, 279-294.[Medline]

Rancourt, D. E., Tsuzuki, T. and Capecchi, M. R (1995). Genetic interaction between hoxb-5 and hoxb-6 is revealed by nonallelic noncomplementation. Genes Dev 9, 108-122.[Abstract/Free Full Text]

Rijli, F. M., Mark, M., Lakkaraju, S., Dierich, A., Dolle, P. and Chambon, P (1993). A homeotic transformation is generated in the rostral branchial region of the head by disruption of Hoxa-2 , which acts as a selector gene. Cell 75, 1333-1349.[Medline]

Roberts, D. J., Johnson, R. L., Burke, A. C., Nelson, C. E., Morgan, B. A. and Tabin, C (1995). Sonic hedgehog is an endodermal signal inducing Bmp-4 and Hox genes during induction and regionalization of the chick hindgut. Development 121, 3163-3174.[Abstract]

Satokata, I., Benson, G. and Maas, R (1995). Sexually dimorphic sterility phenotypes in Hoxa10 -deficient mice. Nature 374, 460-463.[Medline]

Schneider-Maunoury, S., Topilko, P., Seitanidou, T., Levi, G., Cohen-Tannoudji, M., Pournin, S., Babinet, C. and Charnay, P (1993). Disruption of Krox-20 results in alteration of rhombomeres 3 and 5 in the developing hindbrain. Cell 75, 1199-1214.[Medline]

Serbedzija, G. N., Bronner-Fraser, M. and Fraser, S. E (1992). Vital dye analysis of cranial neural crest cell migration in the mouse embryo. Development 116, 297-307.[Medline]

Small, K. M. and Potter, S. S (1993). Homeotic transformations and limb defects in HoxA-11 mutant mice. Genes Dev 7, 2318-2328.[Abstract/Free Full Text]

Smith, D. B. and Johnson, K. S (1988). Single-step purification of polypeptides expressed in Escherichia coli as fusions with glutathione S-transferase. Gene 67, 31-40.[Medline]

Suemori, W., Takahashi, N. and Noguchi, S (1995). Hoxc-9 mutant mice show anterior transformation of the vertebrae and malformation of the sternum and ribs. Mech. Dev 51, 265-273.[Medline]

Thomas, K. R. and Capecchi, M. R (1987). Site-directed mutagenesis by gene targeting in mouse embryo-derived stem cells. Cell 51, 503-512.[Medline]

Thomas, K. R., Deng, C. and Capecchi, M. R (1992). High-fidelity gene targeting in embryonic stem cells by using sequence replacement vectors. Mol. Cell. Biol 12, 2919-2923.[Abstract/Free Full Text]

Wall, N. A., Jones, C. M., Hogan, B. L. M. and Wright, C. V. E (1992). Expression and modification of hox-2.1 protein in mouse embryos. Mech. Dev 37, 111-120.[Medline]

Wilkinson, D. G., Bhatt, S., Chavrier, P., Bravo, R. and Charnay, P (1989). Segment-specific expression of a zinc-finger gene in the developing nervous system of the mouse. Nature 337, 461-464.[Medline]

Wilkinson, D. G., Bhatt, S., Cook, M., Boncinelli, E. and Krumlauf, R (1989). Segmental expression of Hox-2 homeobox-containing genes in the developing mouse hindbrain. Nature 341, 405-409.[Medline]

Yokouchi, Y., Sasaki, H. and Kuroiwa, A (1991). Homeobox gene expression correlated with the bifurcation process of limb cartilage development. Nature 353, 443-445.[Medline]

Yokouchi, Y., Nakazato, S., Yamamoto, M., Goto, Y., Kameda, T., Iba, H. and Kuroiwa, A (1995). Misexpression of Hoxa-13 induces cartilage homeotic transformation and changes cell adhesiveness in chick limb buds. Genes Dev 9, 2509-2522.[Abstract/Free Full Text]




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M Manzanares, S Cordes, L Ariza-McNaughton, V Sadl, K Maruthainar, G Barsh, and R Krumlauf
Conserved and distinct roles of kreisler in regulation of the paralogous Hoxa3 and Hoxb3 genes
Development, January 2, 1999; 126(4): 759 - 769.
[Abstract] [PDF]


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J. Biol. Chem.Home page
J. Chen and H. E. Ruley
An Enhancer Element in the EphA2 (Eck) Gene Sufficient for Rhombomere-specific Expression Is Activated by HOXA1 and HOXB1 Homeobox Proteins
J. Biol. Chem., September 18, 1998; 273(38): 24670 - 24675.
[Abstract] [Full Text] [PDF]


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J. Neurosci.Home page
J. L. Hallows and B. L. Tempel
Expression of Kv1.1, a Shaker-Like Potassium Channel, Is Temporally Regulated in Embryonic Neurons and Glia
J. Neurosci., August 1, 1998; 18(15): 5682 - 5691.
[Abstract] [Full Text] [PDF]


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DevelopmentHome page
D Huang, S. Chen, A. Langston, and L. Gudas
A conserved retinoic acid responsive element in the murine Hoxb-1 gene is required for expression in the developing gut
Development, January 8, 1998; 125(16): 3235 - 3246.
[Abstract] [PDF]


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DevelopmentHome page
F Hirth, B Hartmann, and H Reichert
Homeotic gene action in embryonic brain development of Drosophila
Development, January 5, 1998; 125(9): 1579 - 1589.
[Abstract] [PDF]


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DevelopmentHome page
A Grapin-Botton, M. Bonnin, M Sieweke, and N. Le Douarin
Defined concentrations of a posteriorizing signal are critical for MafB/Kreisler segmental expression in the hindbrain
Development, January 4, 1998; 125(7): 1173 - 1181.
[Abstract] [PDF]


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DevelopmentHome page
M Ensini, T. Tsuchida, H. Belting, and T. Jessell
The control of rostrocaudal pattern in the developing spinal cord: specification of motor neuron subtype identity is initiated by signals from paraxial mesoderm
Development, January 3, 1998; 125(6): 969 - 982.
[Abstract] [PDF]


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DevelopmentHome page
M Studer, A Gavalas, H Marshall, L Ariza-McNaughton, F. Rijli, P Chambon, and R Krumlauf
Genetic interactions between Hoxa1 and Hoxb1 reveal new roles in regulation of early hindbrain patterning
Development, January 3, 1998; 125(6): 1025 - 1036.
[Abstract] [PDF]


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DevelopmentHome page
A Gavalas, M Studer, A Lumsden, F. Rijli, R Krumlauf, and P Chambon
Hoxa1 and Hoxb1 synergize in patterning the hindbrain, cranial nerves and second pharyngeal arch
Development, January 3, 1998; 125(6): 1123 - 1136.
[Abstract] [PDF]


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DevelopmentHome page