Kinase independent function of EphB receptors in retinal axon pathfinding to the optic disc from dorsal but not ventral retina.
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Chad A. Cowan | D. Sretavan | C. Cowan | M. Henkemeyer | M Henkemeyer | E Birgbauer | C A Cowan | D W Sretavan | D. Sretavan | E. Birgbauer
[1] A. Flenniken,et al. Eph Receptors and Ligands Comprise Two Major Specificity Subclasses and Are Reciprocally Compartmentalized during Embryogenesis , 1996, Neuron.
[2] M. Lavail,et al. Influence of eye pigmentation and light deprivation on inherited retinal dystrophy in the rat. , 1975, Experimental eye research.
[3] John G Flanagan,et al. Complementary gradients in expression and binding of ELF-1 and Mek4 in development of the topographic retinotectal projection map , 1995, Cell.
[4] Franco Weth,et al. Modulation of EphA Receptor Function by Coexpressed EphrinA Ligands on Retinal Ganglion Cell Axons , 1999, Neuron.
[5] J G Flanagan,et al. The ephrins and Eph receptors in neural development. , 1998, Annual review of neuroscience.
[6] R. Guillery,et al. On the distribution and probable origin of axonal bundles in the pigment epithelium of the eyecup. , 1985, Brain research.
[7] F. Lottspeich,et al. Neurolin, a cell surface glycoprotein on growing retinal axons in the goldfish visual system, is reexpressed during retinal axonal regeneration , 1992, The Journal of cell biology.
[8] J. Silver,et al. Guidance of optic axons in vivo by a preformed adhesive pathway on neuroepithelial endfeet. , 1984, Developmental biology.
[9] D. Wilkinson,et al. Several receptor tyrosine kinase genes of the Eph family are segmentally expressed in the developing hindbrain , 1994, Mechanisms of development.
[10] U. Dräger,et al. Birth dates of retinal ganglion cells giving rise to the crossed and uncrossed optic projections in the mouse , 1985, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[11] E. Pasquale,et al. Tyrosine Phosphorylation of Transmembrane Ligands for Eph Receptors , 1997, Science.
[12] W. Hoyt,et al. Superior segmental optic hypoplasia. A sign of maternal diabetes. , 1989, Archives of ophthalmology.
[13] Jonas Frisén,et al. Ephrin-A5 (AL-1/RAGS) Is Essential for Proper Retinal Axon Guidance and Topographic Mapping in the Mammalian Visual System , 1998, Neuron.
[14] F. Diella,et al. Roles of ephrinB ligands and EphB receptors in cardiovascular development: demarcation of arterial/venous domains, vascular morphogenesis, and sprouting angiogenesis. , 1999, Genes & development.
[15] Michael S. Deiner,et al. Netrin-1 and DCC Mediate Axon Guidance Locally at the Optic Disc: Loss of Function Leads to Optic Nerve Hypoplasia , 1997, Neuron.
[16] T. Pawson,et al. Sek4 and Nuk receptors cooperate in guidance of commissural axons and in palate formation. , 1996, The EMBO journal.
[17] H. Stier,et al. Axonal Versus Dendritic Outgrowth Is Differentially Affected by Radial Glia in Discrete Layers of the Retina , 1998, The Journal of Neuroscience.
[18] Jang-Yen Wu,et al. Is taurine a neurotransmitter in rabbit retina? , 1985, Brain Research.
[19] T. Pawson,et al. Bidirectional signalling through the EPH-family receptor Nuk and its transmembrane ligands , 1996, Nature.
[20] Jürgen Löschinger,et al. In vitro guidance of retinal ganglion cell axons by RAGS, a 25 kDa tectal protein related to ligands for Eph receptor tyrosine kinases , 1995, Cell.
[21] J. Lund,et al. Developmental expression of neural cell adhesion molecules in the mouse neocortex and olfactory bulb , 1991, The Journal of comparative neurology.
[22] H. Stier,et al. Axonal guidance in the chicken retina. , 1995, Development.
[23] D. Nikolov,et al. Crystal structure of the ligand-binding domain of the receptor tyrosine kinase EphB2 , 1998, Nature.
[24] M. Bastmeyer,et al. Neurolin, the Goldfish Homolog of DM-GRASP, Is Involved in Retinal Axon Pathfinding to the Optic Disk , 1998, The Journal of Neuroscience.
[25] E. Pasquale,et al. Polarized expression of the receptor protein tyrosine kinase Cek5 in the developing avian visual system. , 1995, Developmental biology.
[26] Qiling Xu,et al. Eph receptors and ephrins restrict cell intermingling and communication , 1999, Nature.
[27] David G. Wilkinson,et al. The EphA4 and EphB1 receptor tyrosine kinases and ephrin-B2 ligand regulate targeted migration of branchial neural crest cells , 1997, Current Biology.
[28] T. Pawson,et al. Nuk Controls Pathfinding of Commissural Axons in the Mammalian Central Nervous System , 1996, Cell.
[29] Vance Lemmon,et al. Unique Changes of Ganglion Cell Growth Cone Behavior Following Cell Adhesion Molecule Perturbations: A Time-Lapse Study of the Living Retina , 1995, Molecular and Cellular Neuroscience.
[30] T Pawson,et al. Unified Nomenclature for Eph Family Receptors and Their Ligands, the Ephrins , 1997, Cell.
[31] W. Wahli,et al. Differential expression of peroxisome proliferator-activated receptors (PPARs): tissue distribution of PPAR-alpha, -beta, and -gamma in the adult rat. , 1996, Endocrinology.
[32] John G Flanagan,et al. Topographically Specific Effects of ELF-1 on Retinal Axon Guidance In Vitro and Retinal Axon Mapping In Vivo , 1996, Cell.
[33] D. Wilkinson,et al. Function of the Eph-related kinase rtk1 in patterning of the zebrafish forebrain , 1996, Nature.
[34] W. Halfter. Aberrant optic axons in the retinal pigment epithelium during chick and quail visual pathway development , 1988, The Journal of comparative neurology.
[35] G. Yancopoulos,et al. Eph family receptors and their ligands distribute in opposing gradients in the developing mouse retina. , 1996, Developmental biology.
[36] D. Wilkinson,et al. Expression of truncated Sek-1 receptor tyrosine kinase disrupts the segmental restriction of gene expression in the Xenopus and zebrafish hindbrain. , 1995, Development.
[37] D. Wilkinson,et al. In vivo cell sorting in complementary segmental domains mediated by Eph receptors and ephrins , 1999, Nature.
[38] W. Wahli,et al. A Simplified In Situ Hybridization Protocol Using Non-radioactively Labeled Probes to Detect Abundant and Rare mRNAs on Tissue Sections , 1998 .
[39] V. Dixit,et al. Reciprocal expression of the Eph receptor Cek5 and its ligand(s) in the early retina. , 1997, Developmental biology.
[40] D. O'Leary,et al. Graded and lamina-specific distributions of ligands of EphB receptor tyrosine kinases in the developing retinotectal system. , 1997, Developmental biology.
[41] F. Kirchhoff,et al. Immunohistological localization of the adhesion molecules L1, N‐CAM, and MAG in the developing and adult optic nerve of mice , 1989, The Journal of comparative neurology.
[42] B. G. Marsden,et al. On the distribution of the , 1973 .
[43] E. Pasquale,et al. Expression and tyrosine phosphorylation of Eph receptors suggest multiple mechanisms in patterning of the visual system. , 1998, Developmental biology.
[44] David J. Anderson,et al. Eph Family Transmembrane Ligands Can Mediate Repulsive Guidance of Trunk Neural Crest Migration and Motor Axon Outgrowth , 1997, Neuron.
[45] David J. Anderson,et al. Molecular Distinction and Angiogenic Interaction between Embryonic Arteries and Veins Revealed by ephrin-B2 and Its Receptor Eph-B4 , 1998, Cell.
[46] R. Klein,et al. Similarities and Differences in the Way Transmembrane-Type Ligands Interact with the Elk Subclass of Eph Receptors , 1996, Molecular and Cellular Neuroscience.
[47] S. Fraser,et al. Interactions of Eph-related receptors and ligands confer rostrocaudal pattern to trunk neural crest migration , 1997, Current Biology.