spacer gif spacer gif spacer gif spacer gif spacer gif
 QUICK SEARCH:   [advanced]


spacer gif
     Home     Help     Feedback     Subscriptions     Archive     Search     Table of Contents    


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Kanki, J. P.
Right arrow Articles by Ho, R. K.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Kanki, J. P.
Right arrow Articles by Ho, R. K.
Barro, O., Vriz, S., Joly, J. S., Joly, C., Condamine, H. and Boulekbache, H (1995). Widespread expression of the eve1 gene in zebrafish embryos affects the anterior-posterior axis pattern. Dev. Genet 17, 117-128.[Medline]

Catala, M., Teillet, M. A. and Le Douarin, N. M (1995). Organization and development of the tail bud analyzed with the quail-chick chimaera system. Mech. Dev 51, 51-65.[Medline]

Chesley, P (1935). Development of the short-tailed mutant in the house mouse. J. Exp. Zool 70, 429-435.

Criley, B. B (1969). Analysis of the embryonic sources and mechanisms of development of posterior levels of chick neural tubes. J. Morph 128, 465-501.[Medline]

Elsdale, T. and Davidson, D (1983). Somitogenesis in amphibia IV. The dynamics of tail development. J. Embryol. Exp. Morph 76, 157-176.[Medline]

Gaertner, R. A (1949). Development of the posterior trunk and tail of the chick embryo. J. Exp. Zool 111, 157-174.[Medline]

Gont, L. K., Steinbeisser, H., Blumberg, B. and De Robertis, E. M (1993). Tail formation as a continuation of gastrulation: the multiple cell populations of the Xenopus tailbud derive from the late blastopore lip. Development 119, 991-1004.[Abstract]

Griffith, C. M., Wiley, M. J. and Sanders, E. J (1992). The vertebrate tailbud: three germ layers from one tissue. Anat. Embryol 185, 101-113.[Medline]

Halpern, M. E., Ho, R. K., Walker, C. and Kimmel, C. B (1993). Induction of muscle pioneers and floor plate is distinguished by the zebrafish no tail mutation. Cell 75, 99-111.[Medline]

Halpern, M. E., Thisse, C., Ho, R. K., Thisse, B., Riggleman, B., Trevarrow, B., Weinberg, E. S., Postlethwait, J. H. and Kimmel, C. B (1995). Cell-autonomous shift from axial to paraxial mesodermal development in zebrafish floating head mutants. Development 121, 4257-4264.[Abstract]

Hamburger, V. and Hamilton, H. L (1951). A series of normal stages in the development of the chick embryo. J. Morph 88, 49-92.

Hammerschmidt, M. and Nusslein-Volhard, C (1993). The expression of a zebrafish gene homologous to Drosophila snail suggests a conserved function in invertebrate and vertebrate gastrulation. Development 119, 1107-1118.[Abstract]

Herrmann, B. G., Labeit, S., Poustka, A., King, T. R. and Lehrach, H (1990). Cloning of the T gene required in mesoderm formation in the mouse. Nature 343, 617-622.[Medline]

Holmdahl, D. E (1925). Experimentelle Untersuchungen uber die Lage der Grenze primarer und sekundarer Korperentwicklung beim Huhn. Anat. Anz 59, 393-396.

Joly, J. S., Joly, C., Schulte-Merker, S., Boulekbache, H. and Condamine, H (1993). The ventral and posterior expression of the zebrafish homeobox gene eve1 is perturbed in dorsalized and mutant embryos. Development 119, 1261-1275.[Abstract]

Joly, J. S., Maury, M., Joly, C., Duprey, P., Boulekbache, H. and Condamine, H (1992). Expression of a zebrafish caudal homeobox gene correlates with the establishment of posterior cell lineages at gastrulation. Differentiation 50, 75-87.[Medline]

Keller, R. E. and Tibbetts, P (1989). Mediolateral cell intercalation is a property of the dorsal, axial mesoderm of Xenopus laevis. Dev. Biol 131, 539-549.[Medline]

Kimmel, C. B (1989). Genetics and early development of zebrafish. Trends Genet 5, 283-288.[Medline]

Kimmel, C. B., Ballard, W. W., Kimmel, S. R., Ullmann, B. and Schilling, T. F (1995). Stages of embryonic development of the zebrafish. Dev. Dyn 203, 253-310.[Medline]

Kimmel, C. B. and Warga, R. M (1987). Cell lineages generating axial muscle in the zebrafish embryo. Nature 327, 234-237.[Medline]

Kimmel, C. B. and Warga, R. M (1988). Cell lineage and developmental potential of cells in the zebrafish embryo. Trends Genet 4, 68-74.[Medline]

Kimmel, C. B., Warga, R. M. and Schilling, T. F (1990). Origin and organization of the zebrafish fate map. Development 108, 581-94.[Abstract/Free Full Text]

Laale, H. W (1985). Kupffer's vesicle in Brachydanio rerio : multivesicular origin and proposed function in vitro. Can. J. Zool 63, 2408-2415.

Mills, C. L. and Bellairs, R (1989). Mitosis and cell death in the tail of the chick embryo. Anat. Embryol 180, 301-308.[Medline]

Nakao, T. and Ishizawa, A (1984). Light-and electron-microscopic observations of the tail bud of the larval lamprey ( Lampetra japonica) , with special reference to neural tube formation. Am. J. Anat 170, 55-71.[Medline]

Neumann, P. E., Frankel, W. N., Letts, V. A., Coffin, J. M., Copp, A. J. and Bernfield, M (1994). Multifactorial inheritance of neural tube defects: localization of the major gene and recognition of modifiers in ct mutant mice. Nat. Genet 6, 357-362.[Medline]

Pasteels, J (1943). Proliferations et croissance dans la gastrulation et la formation de la queue des Vertebres. Arch. Biol 54, 1-51.

Sausedo, R. A. and Schoenwolf, G. C (1993). Cell behaviors underlying notochord formation and extension in avian embryos: Quantitative and immunocytochemical studies. Anat. Rec 237, 58-70.[Medline]

Sausedo, R. A. and Schoenwolf, G. C (1994). Quantitative analysis of cell behaviors underlying notochord formation and extension in mouse embryos. Anat. Rec 239, 103-112.[Medline]

Schoenwolf, G. C (1977). Tail (end) bud contributions to the posterior region of the chick embryo. J. Exp. Zool 201, 227-246.

Schoenwolf, G. C (1978). Effects of complete tail extirpation on early development of the posterior region of the chick embryo. Anat. Rec 192, 289-296.[Medline]

Schoenwolf, G. C (1984). Histological and ultrastructural studies of secondary neurulation in the mouse embryo. Am. J. Anat 169, 361-376.[Medline]

Schoenwolf, G. C. and Alvarez, I. S (1989). Roles of neuroepithelial cell rearrangement and division in shaping of the avian neural plate. Development 106, 427-439.[Abstract]

Schoenwolf, G. C. and Delongo, J (1980). Ultrastructure of secondary neurulation in the chick embryo. Am. J. Anat 158, 43-63.[Medline]

Schoenwolf, G. C. and Sheard, P (1990). Fate Mapping the Avian Epiblast with Focal Injections of a Fluorescent-Histochemical Marker: Ectodermal Derivatives. J. Exp. Zool 255, 323-339.[Medline]

Schulte-Merker, S., Ho, R. K., Herrmann, B. G. and Nusslein-Volhard, C (1992). The protein product of the zebrafish homologue of the mouse T gene is expressed in nuclei of the germ ring and the notochord of the early embryo. Development 116, 1021-1032.[Abstract]

Schulte-Merker, S., van Eeden, F. J. M., Halpern, M. E., Kimmel, C. B. and Nusslein-Volhard, C (1994). no tail (ntl) is the zebrafish homologue of the mouse T (Brachyury) gene. Development 120, 1009-1015.[Abstract]

Seevers, C. H (1932). Potencies of the end bud and other caudal levels of the early chick embryo with special reference to the origin of the metanephros. Anat. Rec 54, 217-246.

Shih, J. and Fraser, S. E (1995). Distribution of tissue progenitors within the shield region of the zebrafish gastrula. Development 121, 2755-2765.[Abstract]

Smithberg, M (1954). The origin and development of the tail in the frog, Rana pipiens. J. Exp. Zool 127, 397-425.

Spofford, W. R (1945). Observations of the posterior part of the neural plate in Amblystoma. J. Exp. Zool 99, 35-52.

Spratt, N. T (1947). Regression and shortening of the primitive streak in the explanted chick blastoderm. J. Exp. Zool 104, 69-100.

Takada, S., Stark, K. L., Shea, M. J., Vassileva, G., McMahon, J. A. and McMahon, A. P (1994). Wnt-3a regulates somite and tailbud formation in the mouse embryo. Genes Dev 8, 174-189.[Abstract/Free Full Text]

Talbot, W. S., Trevarrow, B., Halpern, M. E., Melby, A. E., Farr, G., Postlethwait, J. H., Jowett, T., Kimmel, C. B. and Kimelman, D (1995). A homeobox gene essential for zebrafish notochord development. Nature 378, 150-157.[Medline]

Tam, P. P. L (1984). The histogenetic capacity of tissues in the caudal end of the embryonic axis of the mouse. J. Embryol. Exp. Morph 82, 253-266.[Medline]

Thisse, C., Thisse, B., Schilling, T. F. and Postlethwait, J. H (1993). Structure of the zebrafish snail gene and its expression in wild-type, spadetail and no tail mutant embryos. Development 119, 1203-1215.[Abstract]

Tucker, A. S. and Slack, J. M. W (1995). The Xenopus laevis tail-forming region. Development 121, 249-262.[Abstract]

Warga, R. M. and Kimmel, C. B (1990). Cell movements during epiboly and gastrulation in zebrafish. Development 108, 569-580.[Abstract/Free Full Text]

Wilson, V., Manson, L., Skarnes, W. C. and Beddington, R. S. P (1995). The T gene is necessary for normal mesodermal morphogenetic cell movements during gastrulation. Development 121, 877-886.[Abstract]




This article has been cited by other articles:


Home page
DevelopmentHome page
M. J. McGrew, A. Sherman, S. G. Lillico, F. M. Ellard, P. A. Radcliffe, H. J. Gilhooley, K. A. Mitrophanous, N. Cambray, V. Wilson, and H. Sang
Localised axial progenitor cell populations in the avian tail bud are not committed to a posterior Hox identity
Development, July 1, 2008; 135(13): 2289 - 2299.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
L. Zhang, C. Kendrick, D. Julich, and S. A. Holley
Cell cycle progression is required for zebrafish somite morphogenesis but not segmentation clock function
Development, June 15, 2008; 135(12): 2065 - 2070.
[Abstract] [Full Text] [PDF]


Home page
Sci SignalHome page
J. M. W. Slack
The Spark of Life: Electricity and Regeneration
Sci. Signal., September 25, 2007; 2007(405): pe54 - pe54.
[Abstract] [Full Text] [PDF]


Home page
J. Cell Sci.Home page
S. J. Nixon, A. Carter, J. Wegner, C. Ferguson, M. Floetenmeyer, J. Riches, B. Key, M. Westerfield, and R. G. Parton
Caveolin-1 is required for lateral line neuromast and notochord development
J. Cell Sci., July 1, 2007; 120(13): 2151 - 2161.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
I. Skromne, D. Thorsen, M. Hale, V. E. Prince, and R. K. Ho
Repression of the hindbrain developmental program by Cdx factors is required for the specification of the vertebrate spinal cord
Development, June 1, 2007; 134(11): 2147 - 2158.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
T. Iimura, X. Yang, C. J. Weijer, and O. Pourquie
Dual mode of paraxial mesoderm formation during chick gastrulation
PNAS, February 20, 2007; 104(8): 2744 - 2749.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
S. A. Holley
Anterior-posterior differences in vertebrate segments: specification of trunk and tail somites in the zebrafish blastula
Genes & Dev., July 15, 2006; 20(14): 1831 - 1837.
[Full Text] [PDF]


Home page
Genes Dev.Home page
D. P. Szeto and D. Kimelman
The regulation of mesodermal progenitor cell commitment to somitogenesis subdivides the zebrafish body musculature into distinct domains
Genes & Dev., July 15, 2006; 20(14): 1923 - 1932.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. Delfino-Machin, J. S. Lunn, D. N. Breitkreuz, J. Akai, and K. G. Storey
Specification and maintenance of the spinal cord stem zone
Development, October 1, 2005; 132(19): 4273 - 4283.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
U. J. Pyati, A. E. Webb, and D. Kimelman
Transgenic zebrafish reveal stage-specific roles for Bmp signaling in ventral and posterior mesoderm development
Development, May 15, 2005; 132(10): 2333 - 2343.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
J. Dubrulle and O. Pourquie
Coupling segmentation to axis formation
Development, December 1, 2004; 131(23): 5783 - 5793.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
D. P. Szeto and D. Kimelman
Combinatorial gene regulation by Bmp and Wnt in zebrafish posterior mesoderm formation
Development, August 1, 2004; 131(15): 3751 - 3760.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
F. Marlow,, E. M. Gonzalez,,, C. Yin, C. Rojo, and L. Solnica-Krezel,
No tail co-operates with non-canonical Wnt signaling to regulate posterior body morphogenesis in zebrafish
Development, January 1, 2004; 131(1): 203 - 216.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
B. W. Draper, D. W. Stock, and C. B. Kimmel
Zebrafish fgf24 functions with fgf8 to promote posterior mesodermal development
Development, October 1, 2003; 130(19): 4639 - 4654.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
E. M. Morin-Kensicki, E. Melancon, and J. S. Eisen
Segmental relationship between somites and vertebral column in zebrafish
Development, March 10, 2003; 129(16): 3851 - 3860.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. C. Oates and R. K. Ho
Hairy/E(spl)-related (Her) genes are central components of the segmentation oscillator and display redundancy with the Delta/Notch signaling pathway in the formation of anterior segmental boundaries in the zebrafish
Development, March 8, 2003; 129(12): 2929 - 2946.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
S. A. Holley, D. Julich, G.-J. Rauch, R. Geisler, and C. Nusslein-Volhard
her1 and the notch pathway function within the oscillator mechanism that regulates zebrafish somitogenesis
Development, January 3, 2002; 129(5): 1175 - 1183.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
E. C. Liao, N. S. Trede, D. Ransom, A. Zapata, M. Kieran, and L. I. Zon
Non-cell autonomous requirement for the bloodless gene in primitive hematopoiesis of zebrafish
Development, January 2, 2002; 129(3): 649 - 659.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
E. M. Gonzalez, K. Fekany-Lee, A. Carmany-Rampey, C. Erter, J. Topczewski, C. V.E. Wright, and L. Solnica-Krezel
Head and trunk in zebrafish arise via coinhibition of BMP signaling by bozozok and chordino
Genes & Dev., December 15, 2000; 14(24): 3087 - 3092.
[Abstract] [Full Text]


Home page
DevelopmentHome page
M. Halloran, M Sato-Maeda, J. Warren, F Su, Z Lele, P. Krone, J. Kuwada, and W Shoji
Laser-induced gene expression in specific cells of transgenic zebrafish
Development, January 5, 2000; 127(9): 1953 - 1960.
[Abstract] [PDF]


Home page
DevelopmentHome page
R. Davis and M. Kirschner
The fate of cells in the tailbud of Xenopus laevis
Development, January 1, 2000; 127(2): 255 - 267.
[Abstract] [PDF]


Home page
DevelopmentHome page
J. Charrier, M. Teillet, F Lapointe, and N. Le Douarin
Defining subregions of Hensen's node essential for caudalward movement, midline development and cell survival
Development, January 11, 1999; 126(21): 4771 - 4783.
[Abstract] [PDF]


Home page
DevelopmentHome page
S. Connors, J Trout, M Ekker, and M. Mullins
The role of tolloid/mini fin in dorsoventral pattern formation of the zebrafish embryo
Development, January 6, 1999; 126(14): 3119 - 3130.
[Abstract] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
E. Gilland, A. L. Miller, E. Karplus, R. Baker, and S. E. Webb
Imaging of multicellular large-scale rhythmic calcium waves during zebrafish gastrulation
PNAS, January 5, 1999; 96(1): 157 - 161.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
T. Yamaguchi, A Bradley, A. McMahon, and S Jones
A Wnt5a pathway underlies outgrowth of multiple structures in the vertebrate embryo
Development, January 3, 1999; 126(6): 1211 - 1223.
[Abstract] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
M.-A. Teillet, F. Lapointe, and N. M. Le Douarin
The relationships between notochord and floor plate in vertebrate development revisited
PNAS, September 29, 1998; 95(20): 11733 - 11738.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
K. Griffin, S. Amacher, C. Kimmel, and D Kimelman
Molecular identification of spadetail: regulation of zebrafish trunk and tail mesoderm formation by T-box genes
Development, January 9, 1998; 125(17): 3379 - 3388.
[Abstract] [PDF]


Home page
DevelopmentHome page
V Knezevic, R De Santo, and S Mackem
Continuing organizer function during chick tail development
Development, January 5, 1998; 125(10): 1791 - 1801.
[Abstract] [PDF]


This Article
Right arrow Summary Freely available
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Email this article to a friend
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Kanki, J. P.
Right arrow Articles by Ho, R. K.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Kanki, J. P.
Right arrow Articles by Ho, R. K.