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 Halloran, M. C.
Right arrow Articles by Shoji, W.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Halloran, M. C.
Right arrow Articles by Shoji, W.
Social Bookmarking
 Add to CiteULike   Add to Complore   Add to Connotea   Add to Del.icio.us   Add to Digg   Add to Reddit   Add to Technorati   Add to Twitter  
What's this?
Amsterdam, A., Lin, S. and Hopkins, N (1995). The Aequorea victoria green fluorescent protein can be used as a reporter in live zebrafish embryos. Dev. Biol 171, 123-129.[Medline]

Baier, H. and Bonhoeffer, F (1992). Axon guidance by gradients of a target derived component. Science 255, 472-475.[Abstract/Free Full Text]

Bayer, T. and Campos-Ortega, J (1992). A transgene containing lacZ is expressed in primary sensory neurons in zebrafish. Development 115, 421-426.[Abstract]

Bernhardt, R. R., Chitnis, A. B., Lindamer, L. and Kuwada, J. Y (1990). Identification of spinal neurons in the embryonic and larval zebrafish. J. Comp. Neurol 302, 607-616.

Bernhardt, R., Nguyen, N. and Kuwada, J (1992). Growth cone guidance by floor plate cells in the spinal cord of zebrafish embryos. Neuron 8, 869-882.[Medline]

Chalfie, M., Tu, Y., Euskirchen, G., Ward, W. and Prasher, D (1994). Green fluorescent protein as a marker for gene expression. Science 263, 802-805.[Abstract/Free Full Text]

Chitnis, A. B. and Kuwada, J.Y (1990). Axonogenesis in the brain of zebrafish embyros. J. Neurosci 10, 1892-1905.[Abstract]

Cormack, B. P., Valdivia, R. H. and Falkow, S (1996). FACS-optimized mutants of the green fluorescent protein (GFP). Gene 173, 33-38.[Medline]

Culp, P., Nusslein-Volhard, C. and Hopkins, N (1991). High-frequency germ-line transmission of plasmid DNA sequences injected into fertilized zebrafish eggs. Proc. Natl Acad. Sci. USA 88, 7953-7957.[Abstract/Free Full Text]

Devoto, S. H., Melancon, E., Eisen, J. S. and Westerfield, M (1996). Identification of separate slow and fast muscle precursor cells in vivo, prior to somite formation. Development 122, 3371-3380.[Abstract]

Driever, W., Solnica-Krezel, L., Schier, A. F., Neuhauss, S. C. F., Malicki, J., Stemple, D. L., Stainier, D. Y. R., Zwartkruis, F., Abdelilah, S., Rangini, Z., Belak, J. and Boggs, C (1996). A genetic screen for mutations affecting embryogenesis in zebrafish. Development 123, 37-46.[Abstract]

Eisen, J. S., Myers, P. Z. and Westerfield, M (1986). Pathway selection by growth cones of identified motoneurones in live zebrafish embryos. Nature 320, 269-271.[Medline]

Eisen, J (1991). Determination of primary motoneuron identity in developing zebrafish embryos. Science 252, 569-572.[Abstract/Free Full Text]

Greenspoon, S., Patel, C. K., Hashmi, S., Bernhardt, R. R. and Kuwada, J. Y (1995). The notochord and floor plate guide growth cones in the zebrafish spinal cord. J. Neurosci 15, 5956-5965.[Abstract]

Haffter, P., Granato, M., Brand, M., Mullins, M. C., Hammerschmidt, M., Kane, D. A., Odenthal, J., van Eeden, F. J. M., Jiang, Y.-J., Heisenberg, C.-P., Kelsh, R. N., Furutani-Seiki, M., Vogelsang, E., Beuchle, D., Schach, U., Fabian, C. and Nusslein-Volhard, C (1996). The identification of genes with unique and essential functions in the development of the zebrafish, Danio rerio. Development 123, 1-36.[Abstract]

Haflon, M.S., Kose, H., Chiba, A. and Keshishian, H (1997). Targeted gene expression without a tissue-specific promoter: Creating mosaic embryos using laser-induced single-cell heat shock. Proc. Natl. Acad. Sci. USA 94, 6255-6260.[Abstract/Free Full Text]

Harris, J., Honigsberg, L., Robinson, N. and Kenyon, C (1996). Neuronal cell migration in C. elegans : regulation of Hox gene expression and cell position. Development 122, 3117-3131.[Abstract]

Hatta, K (1992). Role of the floor plate in axonal patterning in the zebrafish CNS. Neuron 9, 629-642.[Medline]

Higashijima, S., Okamoto, H., Ueno, N., Hotta, Y. and Eguchi, G (1997). High-frequency generation of transgenic zebrafish which reliably express GFP in whole muscles or the whole body by using promoters of zebrafish origin. Dev. Biol 192, 289-299.[Medline]

Hunt, C. and Morimoto, R. I (1985). Conserved features of eukaryotic hsp70 genes revealed by comparison with the nucleotide sequence of human hsp70. Proc. Natl Acad. Sci. USA 82, 6455-6459.[Abstract/Free Full Text]

Kanki, J. P. and Ho, R. K (1997). The development of the posterior body in zebrafish. Development 124, 881-893.[Abstract]

Kimmel, C. B. and Warga, R. M (1986). Tissue specific cell lineages originate in the gastrula of the zebrafish. Science 231, 356-368.[Abstract/Free Full Text]

Kimmel, C. B., Warga, R. M. and Schilling, T. F (1990). Origin and organization of the zebrafish fate map. Development 108, 581-594.[Abstract/Free Full Text]

Kuwada, J. Y (1986). Cell recognition by neuronal growth cones in a simple vertebrate embryo. Science 233, 740-746.[Abstract/Free Full Text]

Lele, Z., Engel, S. and Krone, P. H (1997). hsp47 and hsp70 gene expression is differentially regulated in a stress-and tissue-specific manner in zebrafish embryos. Dev. Genetics 21, 123-133.[Medline]

Lin, S., Yang, S. and Hopkins, N (1994). lacZ expression in germline transgenic zebrafish can be detected in living embryos. Development 161, 77-83.

Long, Q., Meng, A., Wang, H., Jessen, J. R., Farrell, M. J. and Lin, S (1997). GATA-1 expression pattern can be recapitulated in living transgenic zebrafish using GFP reporter gene. Development 124, 4105-4111.[Abstract]

Luo, Y., Raible, D. and Raper, J. A (1993). Collapsin: a protein in brain that induces the collapse and paralysisof neuronal growth cones. Cell 75, 217-227.[Medline]

Messersmith, E. K., Leonardo, E. D., Shatz, C. J., Tessier-Lavigne, M., Goodman, C. S. and Kolodkin, A. L (1995). Semaphorin III can function as a selective chemorepellent to patternsensory projections in the spinal cord. Neuron 14, 949-959.[Medline]

Metcalfe, W. K., Kimmel, C. B. and Schabtach, E (1985). Anatomy of the posterior lateral line system in young larvae of the zebrafish. J. Comp. Neurol 233, 377-389.[Medline]

Monsma, S. A., Ard, R., Lis, J. T. and Wolfner, M. F (1988). Localized heat-shock induction in Drosophila melanogaster. J. Exp. Zool 247, 279-284.[Medline]

Myers, P. Z., Eisen, J. S. and Westerfield, M (1986). Development and axonal outgrowth of identified motoneurons in the zebrafish. J. Neurosci 6, 2278-2289.[Abstract]

Pike, S. H., Melan\215on, E. F. and Eisen, J. S (1992). Pathfinding by zebrafish motoneurons in the absence of normal pioneer axons. Development 114, 825-831.[Abstract]

Polleux, F., Giger, R. J., Ginty, D. D., Kolodkin, A. L. and Ghosh, A (1999). Pattern of cortical efferent projections by semaphorin-neuropilin interactions. Science 282, 1904-1906.

Puschel, A. W., Adams, R. H. and Betz, H (1995). Murine semaphorin D/collapsin is a member of a diverse gene familyand creates domains inhibitory for axonal extension. Neuron 14, 941-948.[Medline]

Roos, M., Schachner, M. and Bernhardt, R. R (1999). Zebrafish semaphorin Z1b inhibits growing motor axons in vivo. Mech. Dev 87, 103-117.[Medline]

Shoji, W., Yee, C. S. and Kuwada, J. Y (1998). Zebrafish Semaphorin Z1a collapses specific growth cones and alters their pathway in vivo. Development 125, 1275-1283.[Abstract]

Streisinger, G., Walker, C., Dower, N., Knauber, D. and Singer, F (1981). Production of clones of homozygous diploid zebrafish ( Brachydanio rerio). Nature 291, 293-296.[Medline]

Strehlow, D., Heinrich, G. and Gilbert, W (1994). The fates of the blastomeres of the 16-cell zebrafish embryo. Development 120, 1791-1798.[Abstract]

Stringham, E. G. and Candido, E. P (1993). Targeted single-cell induction of gene products in Caenorhabditis elegans : a new tool for developmental studies. J. Exp. Zool 266, 227-233.[Medline]

Taniguchi, M., Yuasa, S., Fujisawa, H., Naruse, I., Saga, S., Mishina, M. and Yagi, T (1997). Disruption of semaphorin III/D gene causes severe abnormality in peripheral nerve. Neuron 19, 519-530.[Medline]

Tessier-Lavigne, M. and Goodman, C. S (1996). The molecular biology of axon guidance. Science 274, 1123-1133.[Abstract/Free Full Text]

Trevarrow, B., Marks, D. L. and Kimmel, C. B (1990). Organization of hindbrain segments in the zebrafish embryo. Neuron 4, 669-679.[Medline]

Westerfield, M., McMurray, J. and Eisen, J. S (1986). Identified motoneurons and their innervation of axial muscles in the zebrafish. J. Neurosci 6, 2267-2277.[Abstract]

Wilson, S. W., Ross, L., Parrot, T. and Easter, S. S (1990). The development of a simple scaffold of axon tracts in the brain of embryonic zebrafish, Brachydanio rerio. Development 108, 121-145.[Abstract]

Woo, K. and Fraser, S. E (1995). Order and coherence in the fate map of the zebrafish nervous system. Development 121, 2595-2609.[Abstract]

Yee, C. S., Chandrasekhar, A., Halloran, M., Shoji, W. and Kuwada, J. Y (1999). Molecular cloning, expression, and in vitro acitivity of zebrafish semaphorin Z1a. Brain Res. Bull 48, 581-593.[Medline]

Zeller, J. and Granato, M (1999). The zebrafish diwanka gene controls anearly step of motor growth cone migration. Development 126, 3461-3472.[Abstract]


Add to CiteULike CiteULike   Add to Complore Complore   Add to Connotea Connotea   Add to Del.icio.us Del.icio.us   Add to Digg Digg   Add to Reddit Reddit   Add to Technorati Technorati   Add to Twitter Twitter    What's this?


This article has been cited by other articles:


Home page
J. Neurosci.Home page
S. Woo, D. J. Rowan, and T. M. Gomez
Retinotopic Mapping Requires Focal Adhesion Kinase-Mediated Regulation of Growth Cone Adhesion
J. Neurosci., November 4, 2009; 29(44): 13981 - 13991.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
D. Hesselson, R. M. Anderson, M. Beinat, and D. Y. R. Stainier
Distinct populations of quiescent and proliferative pancreatic {beta}-cells identified by HOTcre mediated labeling
PNAS, September 1, 2009; 106(35): 14896 - 14901.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
B. L. Arduini, K. M. Bosse, and P. D. Henion
Genetic ablation of neural crest cell diversification
Development, June 15, 2009; 136(12): 1987 - 1994.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
C. Satou, Y. Kimura, T. Kohashi, K. Horikawa, H. Takeda, Y. Oda, and S.-i. Higashijima
Functional Role of a Specialized Class of Spinal Commissural Inhibitory Neurons during Fast Escapes in Zebrafish
J. Neurosci., May 27, 2009; 29(21): 6780 - 6793.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
N. Russek-Blum, A. Gutnick, H. Nabel-Rosen, J. Blechman, N. Staudt, R. I. Dorsky, C. Houart, and G. Levkowitz
Dopaminergic neuronal cluster size is determined during early forebrain patterning
Development, October 15, 2008; 135(20): 3401 - 3413.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
V. Lecaudey, G. Cakan-Akdogan, W. H. J. Norton, and D. Gilmour
Dynamic Fgf signaling couples morphogenesis and migration in the zebrafish lateral line primordium
Development, August 15, 2008; 135(16): 2695 - 2705.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
K. Asakawa, M. L. Suster, K. Mizusawa, S. Nagayoshi, T. Kotani, A. Urasaki, Y. Kishimoto, M. Hibi, and K. Kawakami
Genetic dissection of neural circuits by Tol2 transposon-mediated Gal4 gene and enhancer trapping in zebrafish
PNAS, January 29, 2008; 105(4): 1255 - 1260.
[Abstract] [Full Text] [PDF]


Home page
J. Biol. Chem.Home page
S. Jia, Z. Ren, X. Li, Y. Zheng, and A. Meng
smad2 and smad3 Are Required for Mesendoderm Induction by Transforming Growth Factor- /Nodal Signals in Zebrafish
J. Biol. Chem., January 25, 2008; 283(4): 2418 - 2426.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. Sato-Maeda, M. Obinata, and W. Shoji
Position fine-tuning of caudal primary motoneurons in the zebrafish spinal cord
Development, January 15, 2008; 135(2): 323 - 332.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
S. Nagayoshi, E. Hayashi, G. Abe, N. Osato, K. Asakawa, A. Urasaki, K. Horikawa, K. Ikeo, H. Takeda, and K. Kawakami
Insertional mutagenesis by the Tol2 transposon-mediated enhancer trap approach generated mutations in two developmental genes: tcf7 and synembryn-like
Development, January 1, 2008; 135(1): 159 - 169.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
N. Miyasaka, H. Knaut, and Y. Yoshihara
Cxcl12/Cxcr4 chemokine signaling is required for placode assembly and sensory axon pathfinding in the zebrafish olfactory system
Development, July 1, 2007; 134(13): 2459 - 2468.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
D. Shin, C. H. Shin, J. Tucker, E. A. Ober, F. Rentzsch, K. D. Poss, M. Hammerschmidt, M. C. Mullins, and D. Y. R. Stainier
Bmp and Fgf signaling are essential for liver specification in zebrafish
Development, June 1, 2007; 134(11): 2041 - 2050.
[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
X. Le, D. M. Langenau, M. D. Keefe, J. L. Kutok, D. S. Neuberg, and L. I. Zon
Heat shock-inducible Cre/Lox approaches to induce diverse types of tumors and hyperplasia in transgenic zebrafish
PNAS, May 29, 2007; 104(22): 9410 - 9415.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
T. Sato, T. Hamaoka, H. Aizawa, T. Hosoya, and H. Okamoto
Genetic Single-Cell Mosaic Analysis Implicates ephrinB2 Reverse Signaling in Projections from the Posterior Tectum to the Hindbrain in Zebrafish
J. Neurosci., May 16, 2007; 27(20): 5271 - 5279.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
J. Feldner, M. M. Reimer, J. Schweitzer, B. Wendik, D. Meyer, T. Becker, and C. G. Becker
PlexinA3 Restricts Spinal Exit Points and Branching of Trunk Motor Nerves in Embryonic Zebrafish
J. Neurosci., May 2, 2007; 27(18): 4978 - 4983.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
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]


Home page
DevelopmentHome page
C. L. Stoick-Cooper, G. Weidinger, K. J. Riehle, C. Hubbert, M. B. Major, N. Fausto, and R. T. Moon
Distinct Wnt signaling pathways have opposing roles in appendage regeneration
Development, February 1, 2007; 134(3): 479 - 489.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
D. A. Prober, J. Rihel, A. A. Onah, R.-J. Sung, and A. F. Schier
Hypocretin/Orexin Overexpression Induces An Insomnia-Like Phenotype in Zebrafish
J. Neurosci., December 20, 2006; 26(51): 13400 - 13410.
[Abstract] [Full Text] [PDF]


Home page
Proc. Natl. Acad. Sci. USAHome page
J.-Y. Jeong, Z. Einhorn, S. Mercurio, S. Lee, B. Lau, M. Mione, S. W. Wilson, and S. Guo
Neurogenin1 is a determinant of zebrafish basal forebrain dopaminergic neurons and is regulated by the conserved zinc finger protein Tof/Fezl
PNAS, March 28, 2006; 103(13): 5143 - 5148.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
F. Rentzsch, J. Zhang, C. Kramer, W. Sebald, and M. Hammerschmidt
Crossveinless 2 is an essential positive feedback regulator of Bmp signaling during zebrafish gastrulation
Development, March 1, 2006; 133(5): 801 - 811.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. Sato-Maeda, H. Tawarayama, M. Obinata, J. Y. Kuwada, and W. Shoji
Sema3a1 guides spinal motor axons in a cell- and stage-specific manner in zebrafish
Development, March 1, 2006; 133(5): 937 - 947.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
Y. Lee, S. Grill, A. Sanchez, M. Murphy-Ryan, and K. D. Poss
Fgf signaling instructs position-dependent growth rate during zebrafish fin regeneration
Development, December 1, 2005; 132(23): 5173 - 5183.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
Y. Liu and M. C. Halloran
Central and Peripheral Axon Branches from One Neuron Are Guided Differentially by Semaphorin3D and Transient Axonal Glycoprotein-1
J. Neurosci., November 9, 2005; 25(45): 10556 - 10563.
[Abstract] [Full Text] [PDF]


Home page
Genes Dev.Home page
C. E. Burns, D. Traver, E. Mayhall, J. L. Shepard, and L. I. Zon
Hematopoietic stem cell fate is established by the Notch-Runx pathway
Genes & Dev., October 1, 2005; 19(19): 2331 - 2342.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. Nechiporuk, T. Linbo, and D. W. Raible
Endoderm-derived Fgf3 is necessary and sufficient for inducing neurogenesis in the epibranchial placodes in zebrafish
Development, August 15, 2005; 132(16): 3717 - 3730.
[Abstract] [Full Text] [PDF]


Home page
Toxicol SciHome page
A. J. Hill, H. Teraoka, W. Heideman, and R. E. Peterson
Zebrafish as a Model Vertebrate for Investigating Chemical Toxicity
Toxicol. Sci., July 1, 2005; 86(1): 6 - 19.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. Yamaguchi, N. Tonou-Fujimori, A. Komori, R. Maeda, Y. Nojima, H. Li, H. Okamoto, and I. Masai
Histone deacetylase 1 regulates retinal neurogenesis in zebrafish by suppressing Wnt and Notch signaling pathways
Development, July 1, 2005; 132(13): 3027 - 3043.
[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
I. Masai, M. Yamaguchi, N. Tonou-Fujimori, A. Komori, and H. Okamoto
The hedgehog-PKA pathway regulates two distinct steps of the differentiation of retinal ganglion cells: the cell-cycle exit of retinoblasts and their neuronal maturation
Development, April 1, 2005; 132(7): 1539 - 1553.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
Q. Li, K. Shirabe, C. Thisse, B. Thisse, H. Okamoto, I. Masai, and J. Y. Kuwada
Chemokine Signaling Guides Axons within the Retina in Zebrafish
J. Neurosci., February 16, 2005; 25(7): 1711 - 1717.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
M. A. Wolman, Y. Liu, H. Tawarayama, W. Shoji, and M. C. Halloran
Repulsion and Attraction of Axons by Semaphorin3D Are Mediated by Different Neuropilins In Vivo
J. Neurosci., September 29, 2004; 24(39): 8428 - 8435.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
T. Miyashita, S.-Y. Yeo, Y. Hirate, H. Segawa, H. Wada, M. H. Little, T. Yamada, N. Takahashi, and H. Okamoto
PlexinA4 is necessary as a downstream target of Islet2 to mediate Slit signaling for promotion of sensory axon branching
Development, August 1, 2004; 131(15): 3705 - 3715.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
S.-i. Higashijima, M. A. Masino, G. Mandel, and J. R. Fetcho
Engrailed-1 Expression Marks a Primitive Class of Inhibitory Spinal Interneuron
J. Neurosci., June 23, 2004; 24(25): 5827 - 5839.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
J. L. Lewis, J. Bonner, M. Modrell, J. W. Ragland, R. T. Moon, R. I. Dorsky, and D. W. Raible
Reiterated Wnt signaling during zebrafish neural crest development
Development, March 15, 2004; 131(6): 1299 - 1308.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
Y. Liu, J. Berndt, F. Su, H. Tawarayama, W. Shoji, J. Y. Kuwada, and M. C. Halloran
Semaphorin3D Guides Retinal Axons along the Dorsoventral Axis of the Tectum
J. Neurosci., January 14, 2004; 24(2): 310 - 318.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
W. Shoji, S. Isogai, M. Sato-Maeda, M. Obinata, and J. Y. Kuwada
Semaphorin3a1 regulates angioblast migration and vascular development in zebrafish embryos
Development, July 15, 2003; 130(14): 3227 - 3236.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
T. Xiao, W. Shoji, W. Zhou, F. Su, and J. Y. Kuwada
Transmembrane Sema4E Guides Branchiomotor Axons to Their Targets in Zebrafish
J. Neurosci., May 15, 2003; 23(10): 4190 - 4198.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
A. Geling, M. Itoh, A. Tallafuss, P. Chapouton, B. Tannhauser, J. Y. Kuwada, A. B. Chitnis, and L. Bally-Cuif
bHLH transcription factor Her5 links patterning to regional inhibition of neurogenesis at the midbrain-hindbrain boundary
Development, April 15, 2003; 130(8): 1591 - 1604.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
L. Maves, W. Jackman, and C. B. Kimmel
FGF3 and FGF8 mediate a rhombomere 4 signaling activity in the zebrafish hindbrain
Development, March 10, 2003; 129(16): 3825 - 3837.
[Abstract] [Full Text] [PDF]


Home page
Toxicol PatholHome page
J. M. Spitsbergen and M. L. Kent
The State of the Art of the Zebrafish Model for Toxicology and Toxicologic Pathology Research--Advantages and Current Limitations
Toxicol Pathol, January 1, 2003; 31(1_suppl): 62 - 87.
[Abstract] [PDF]


Home page
DevelopmentHome page
B. R. Keegan, J. L. Feldman, D. H. Lee, D. S. Koos, R. K. Ho, D. Y. R. Stainier, and D. Yelon
The elongation factors Pandora/Spt6 and Foggy/Spt5 promote transcription in the zebrafish embryo
Development, January 4, 2002; 129(7): 1623 - 1632.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
K. A. Dutton, A. Pauliny, S. S. Lopes, S. Elworthy, T. J. Carney, J. Rauch, R. Geisler, P. Haffter, and R. N. Kelsh
Zebrafish colourless encodes sox10 and specifies non-ectomesenchymal neural crest fates
Development, November 1, 2001; 128(21): 4113 - 4125.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
N. D. Lawson, N. Scheer, V. N. Pham, C.-H. Kim, A. B. Chitnis, J. A. Campos-Ortega, and B. M. Weinstein
Notch signaling is required for arterial-venous differentiation during embryonic vascular development
Development, October 1, 2001; 128(19): 3675 - 3683.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
M. Kobayashi, K. Nishikawa, and M. Yamamoto
Hematopoietic regulatory domain of gata1 gene is positively regulated by GATA1 protein in zebrafish embryos
Development, June 15, 2001; 128(12): 2341 - 2350.
[Abstract] [Full Text] [PDF]


Home page
DevelopmentHome page
N Scheer, A Groth, S Hans, and J. Campos-Ortega
An instructive function for Notch in promoting gliogenesis in the zebrafish retina
Development, January 4, 2001; 128(7): 1099 - 1107.
[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 Halloran, M. C.
Right arrow Articles by Shoji, W.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Halloran, M. C.
Right arrow Articles by Shoji, W.
Social Bookmarking
 Add to CiteULike   Add to Complore   Add to Connotea   Add to Del.icio.us   Add to Digg   Add to Reddit   Add to Technorati   Add to Twitter  
What's this?