Growth-cone attraction to netrin-1 is converted to repulsion by laminin-1 (original) (raw)
References
Bixby,J. L. & Harris,W. A. Molecular mechanisms of axon growth and guidance. Annu. Rev. Cell Biol.7, 117–159 (1991). ArticleCAS Google Scholar
Culotti,J. G. & Kolodkin,A. L. Functions of netrins and semaphorins in axon guidance. Curr. Opin. Neurobiol.6, 81 (1996). ArticleCAS Google Scholar
Tessier-Lavigne,M. & Goodman,C. S. The molecular biology of axon guidance. Science274, 1123–1133 (1996). ArticleADSCAS Google Scholar
de la Torre,J. R. et al. Turning of retinal growth comes in a netrin-1 gradient mediated by the netrin receptor DCC. Neuron19, 1211–1224 (1997). ArticleCAS Google Scholar
Deiner,M. S. et al. Netrin-1 and DCC mediate axon guidance locally at the optic disc: loss of fucntion leads to optic nerve hypoplasia. Neuron19, 575–589 (1997). ArticleCAS Google Scholar
Cohen,J., Burne,J. F., winter,J. & Bartlett,P. Retinal ganglion cells lose response to laminin with maturation. Nature322, 465–467 (1986). ArticleADSCAS Google Scholar
Cohen,J., Burne,J. F., McKinlay,C. & Winter,J. The role of laminin and the laminin/fibronectin receptor complex in the outgrowth of retinal ganglion cell axons. Dev. Biol.122, 407–418 (1987). ArticleCAS Google Scholar
Liesi,P. & Silver,J. Is astrocyte laminin involved in axon guidance in the mammalian CNS? Dev. Biol.130, 774–785 (1988). ArticleCAS Google Scholar
de Curtis,I. & Reichardt,L. F. Function and spatial distribution in developing chick retina of the laminin receptor α6β1 and its isoforms. Development118, 377–388 (1993). CASPubMedPubMed Central Google Scholar
Lilienbaum,A., Reszka,A. A., Horwitz,A. F. & Holt,C. E. Chimeric integrins expressed in retinal ganglion cells impair process outgrowth in vivo. Mol. Cell. Neurosci.6, 139–152 (1995). ArticleCAS Google Scholar
Darribere,T., Yamada,K. M., Johnson,K. E. & Boucaut,J. C. The 140-kDa fibronectin receptor complex is required for mesodermal cell adhesion during gastrulation in the amphibian Pleurodeles waltlii. Dev. Biol.126, 182–194 (1988). ArticleCAS Google Scholar
Powell,S. K. & Kleinman,H. K. Neuronal laminins and their cellular receptors. Int. J. Biochem. Cell Biol.29, 401–414 (1997). ArticleCAS Google Scholar
Sephel,G. C. et al. Laminin A chain synthetic peptide which supports neurite outgrowth. Biochem. Biophys. Res. Commun.162, 821–829 (1989). ArticleCAS Google Scholar
Rabacchi,S. A., Neve,R. L. & Drager,U. C. A positional marker for the dorsal embryonic retina is homologous to the high-affinity laminin receptor. Development109, 521–531 (1990). CASPubMed Google Scholar
Ardini,E. et al. Co-regulation and physical association of the 67-kDa monomeric laminin receptor and the α6β4 integrin. J. Biol. Chem.272, 2342–2345 (1997). ArticleCAS Google Scholar
Menard,S., Castronovo,V., Tagliabue,E. & Sobel,M. E. New insights into the metastasis-associated 67 kD laminin receptor. J. Cell Biochem.67, 155–165 (1997). ArticleCAS Google Scholar
Weeks,B. S. et al. Adult and fetal human mesangial cells interact with specific laminin domains. Am. J. Physiol.261, F688–695 (1991). CASPubMed Google Scholar
Song,H. J., Ming,G. L. & Poo,M. M. cAMP-induced switching in turning direction of nerve growth cones. Nature388, 275–279 (1997); erratum, ibid389, 413 (1997). ArticleADSCAS Google Scholar
Rothermel,J. D. & Parker Botelho,L. H. A mechanistic and kinetic analysis of the interactions of the diastereoisomers of adenosine 3′,5′-(cyclic)phosphorothioate with purified cyclic AMP-dependent protein kinase. Biochem. J.251, 757–762 (1988). ArticleCAS Google Scholar
Bates,C. A. & Meyer,R. L. Heterotrimeric G protein activation rapidly inhibits outgrowth of optic axons from adult and embryonic mouse, and goldfish retinal explants. Brain Res.714, 65–75 (1996). ArticleADSCAS Google Scholar
Hauzenberger,D., Klominek,J. & Sundqvist,K. G. Functional specialization of fibronectin-binding beta 1-integrins in T lymphocyte migration. J. Immunol.153, 960–971 (1994). CASPubMed Google Scholar
Wiemelt,A. P., Engleka,M. J., Skorupa,A. F. & McMorris,F. A. Immunochemical visualization and quantitation of cyclic AMP in single cells. J. Biol. Chem.272, 31489–31495 (1997). ArticleCAS Google Scholar
Hanson, M. G. Jr, Shen,S., Wiemelt,A. P., McMorris,F. A. & Barres,B. A. Cyclic AMP elevation is sufficient to promote the survival of spinal motor neurons in vitro. J. Neurosci.18, 7361–7371 (1998). Article Google Scholar
Holt,C. E. A single-cell analysis of early retinal ganglion cell differentiation in Xenopus: from soma to axon tip. J. Neurosci.9, 3123–3145 (1989). ArticleCAS Google Scholar
Lohof,A. M., Quillan,M., Dan,Y. & Poo,M. M. Asymmetric modulation of cytosolic cAMP activity induces growth cone turning. J. Neurosci.12, 1253–1261 (1992). ArticleCAS Google Scholar
Song, H.-J. & Poo, M.-M. Signal transduction underlying growth cone guidance by diffusible factors. Curr. Opin. Neurobiol.9, 355–363 (1999). Article Google Scholar
Nieuwkoop,P. D. & Faber,J. Normal Table of Xenopus laevis (Daudin). A Systematical and Chronological Survey of the Development from the Fertilized Egg till the End of Metamorphosis (North-Holland, Amsterdam, 1967). Google Scholar
Harris,W. A. Holt,C. E., Smith,T. A. & Gallenson,N. Growth cones of developing retinal cells in vivo, on culture surfaces, and in collagen matrices. J. Neurosci. Res.13, 101–122 (1985). ArticleCAS Google Scholar