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 Wolf, B. D.
Right arrow Articles by Chiba, A.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Wolf, B. D.
Right arrow Articles by Chiba, A.
Battye, R., Stevens, A. and Jacobs, J. R (1999). Axon repulsion from the midline of the Drosophila CNS requries slit function. Development 126, 2475-2481.[Abstract]

Bhat, K. M (1998). Cell-cell signaling during neurogenesis: some answers and many questions. Int. J. Dev. Biol 42, 127-139.[Medline]

Broadus, J., Skeath, J. B., Spana, E. P., Bossing, T., Technau, G. and Doe, C. Q (1995). New neuroblast markers and the origin of the aCC/pCC neurons in the Drosophila central nervous system. Mech. Dev 53, 393-402.[Medline]

Brose, K., Bland, K. S., Wang, K. H., Arnott, D., Henzel, W., Goodman, C. S., Tessier-Lavigne, M. and Kidd, T (1999). Slit proteins bind Robo receptors and have an evolutionarily conserved role in repulsive axon guidance. Cell 96, 795-806.[Medline]

Chan, S. O., Wong, K. F., Chung, K. Y. and Yung, W. H (1998). Changes in morphology and behavior of retinal growth cones before and after crossing the midline of the mouse chiasm: a confocal microscopy study. Eur. J. Neurosci 10, 2511-2522.[Medline]

Chen, C. and Tonegawa, S (1997). Molecular genetic analysis of synaptic plasticity, activity-dependent neural development, learning, and memory in the mammalian brain. Annu. Rev. Neurosci 20, 157-184.[Medline]

Chiba, A. and Rose, D (1998). \324Painting' the target: how local molecular cues define synaptic relationships. BioEssays 20, 941-948.[Medline]

Chiba, A., Snow, P., Keshishian, H. and Hotta, Y (1995). Fasciclin III as a synaptic target recognition molecule in Drosophila. Nature 374, 166-8.[Medline]

Condic, M. L. and Letourneau, P. C (1997). Ligand-induced changes in integrin expression regulate neuronal adhesion and neurite outgrowth. Nature 389, 852-856.[Medline]

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

Goodman, C. S. and Shatz, C. J (1993). Developmental mechanisms that generate precise patterns of neuronal connectivity. Cell 72, 77-98.

Halpern, M. E., Chiba, A., Johansen, J. and Keshishian, H (1991). Growth cone behavior underlying the development of stereotypic synaptic connections in Drosophila embryos. J. Neurosci 11, 3227-3238.[Abstract]

Harris, R., Sabatelli, L. and Seeger, M (1996). Guidance cues at the Drosophila CNS midline: identification and characterization of two Drosophila Netrin/UNC-6 homologs. Neuron 17, 217-228.[Medline]

Harris, W. A. and Holt, C. E (1999). Slit, the midline repellent. Nature 398, 462-463.[Medline]

Hummel, T., Schimmelpfeng, K. and Klambt, C (1999). Commissure formation in the embryonic CNS of Drosophila : II. function of the different midline cells. Development 126, 771-779.[Abstract]

Katz, L. C. and Shatz, C. J (1996). Synaptic activity and the construction of cortical circuits. Science 274, 1133-1138.[Abstract/Free Full Text]

Keshishian, H., Broadie, K., Chiba, A. and Bate, M (1996). The Drosophila neuromuscular junction: a model for studying synaptic development and function. Annu. Rev. Neurosci 19, 545-575.[Medline]

Kidd, T., Brose, K., Mitchell, K. J., Fetter, R. D., Tessier-Lavigne, M., Goodman, C. S. and Tear, G (1998). Roundabout controls axon crossing of the CNS midline and defines a novel subfamily of evolutionarily conserved guidance receptors. Cell 92, 205-215.[Medline]

Kidd, T., Russell, C., Goodman, C. S. and Tear, G (1998). Dosage-sensitive and complementary functions of roundabout and commissureless control axon crossing of the CNS midline. Neuron 20, 25-33.[Medline]

Kolodziej, P. A., Timpe, L. C., Mitchell, K. J., Fried, S. R., Goodman, C. S., Jan, L. Y. and Jan, Y. N (1996). Frazzled encodes a Drosophila member of the DCC immunoglobulin subfamily and is required for CNS and motor axon guidance. Cell 87, 197-204.[Medline]

Kose, H., Rose, D., Zhu, X. and Chiba, A (1997). Homophilic synaptic target recognition mediated by immunoglobulin-like cell adhesion molecule fasciclin III. Development 124, 4143-4152.[Abstract]

Landgraf, M., Bossing, T., Technau, G. M. and Bate, M (1997). The origin, location, and projections of the embryonic abdominal motoneurons of Drosophila. J. Neurosci 17, 9642-9655.[Abstract/Free Full Text]

McConnell, S. K (1995). Strategies for the generation of neuronal diversity in the developing central nervous system. J. Neurosci 15, 6987-6998.[Abstract]

Mitchell, K. J., Doyle, J. L., Serafini, T., Kennedy, T. E., Tessier-Lavigne, M., Goodman, C. S. and Dickson, B. J (1996). Genetic analysis of netrin genes in Drosophila : netrins guide CNS commissurral axons and peripheral motor axons. Neuron 17, 203-215.[Medline]

Murakami, F. and Shirasaki, R (1997). Guidance of circumferentially growing axons by the floor plate in the vertebrate central nervous system. Cell Tissue Res 290, 323-330.[Medline]

Rose, D., Zhu, X., Kose, H., Hoang, B., Cho, J. and Chiba, A (1997). Toll, a muscle cell surface molecule, locally inhibits synaptic initiation of the RP3 motoneuron growth cone in Drosophila. Development 124, 1561-1571.[Abstract]

Schmid, A., Chiba, A. and Doe, C (1999). Clonal analysis of Drosophila embryonic neuroblasts: neural cell types, axon projections and muscle targets. Development 126, 4653-4689.[Abstract]

Seeger, M., Tear, G., Ferres-Marco, D. and Goodman, C. S (1993). Mutations affecting growth cone guidance in Drosophila : genes necessary for guidance toward or away from the midline. Neuron 10, 409-26.[Medline]

Shirasaki, R., Katsumata, R. and Murakami, F (1998). Change in chemoattractant responsiveness of developing axons at an intermediate target. Science 279, 105-107.[Abstract/Free Full Text]

Song, H. J., Ming, G. L. and Poo, M. M (1997). cAMP-induced switching in turning direction of nerve growth cones. Nature 388, 275-279.[Medline]

Stoeckli, E. T. and Landmesser, L. T (1998). Axon guidance at choice points. Curr. Opin. Neurobiol 8, 73-79.[Medline]

Tear, G., Harris, R., Sutaria, S., Kilomanski, K., Goodman, C. S. and Seeger, M. A (1996). Commissureless controls growth cone guidance across the CNS midline in Drosophila and encodes a novel membrane protein. Neuron 16, 501-514.[Medline]

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

Thomas, J. B (1998). Axon guidance: crossing the midline. Curr. Biol 8, 102-104.

Thor, S., Andersson, S. G., Tomlinson, A. and Thomas, J. B (1999). A LIM-homeodomain conbinatorial code for motoneuron pathway selection. Nature 397, 76-80.[Medline]

Wang, L. C., Dani, J., Godement, P., Marcus, R. C. and Mason, C. A (1995). Crossed and uncrossed retinal axons respond differently to cells of the optic chiasm midline in vitro. Neuron 15, 1349-1364.[Medline]

Wolf, B., Seeger, M. A. and Chiba, A (1998). Commissureless endocytosis is correlated with initiation of neuromuscular synaptogenesis. Development 125, 3853-3863.[Abstract]

Zallen, J. A., Yi, B. A. and Bargmann, C. I (1998). The conserved immunoglobulin superfamily member sax-3/robo directs multiple aspects of axon guidance in C. elegans. Cell 92, 217-227.[Medline]




This article has been cited by other articles:


Home page
DevelopmentHome page
M.-P. Furrer, I. Vasenkova, D. Kamiyama, Y. Rosado, and A. Chiba
Slit and Robo control the development of dendrites in Drosophila CNS
Development, November 1, 2007; 134(21): 3795 - 3804.
[Abstract] [Full Text] [PDF]


Home page
GeneticsHome page
K. M. Bhat
Slit-Roundabout Signaling Neutralizes Netrin-Frazzled-Mediated Attractant Cue to Specify the Lateral Positioning of Longitudinal Axon Pathways
Genetics, May 1, 2005; 170(1): 149 - 159.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
A. Ratnaparkhi, S. Banerjee, and G. Hasan
Altered Levels of Gq Activity Modulate Axonal Pathfinding in Drosophila
J. Neurosci., June 1, 2002; 22(11): 4499 - 4508.
[Abstract] [Full Text] [PDF]


Home page
J. Neurosci.Home page
T. A. Godenschwege, J. H. Simpson, X. Shan, G. J. Bashaw, C. S. Goodman, and R. K. Murphey
Ectopic Expression in the Giant Fiber System of Drosophila Reveals Distinct Roles for Roundabout (Robo), Robo2, and Robo3 in Dendritic Guidance and Synaptic Connectivity
J. Neurosci., April 15, 2002; 22(8): 3117 - 3129.
[Abstract] [Full Text] [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 Wolf, B. D.
Right arrow Articles by Chiba, A.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Wolf, B. D.
Right arrow Articles by Chiba, A.