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Clark, E. A. and Lee, V. M.-Y (1991). Dynamics of mammalian high-molecular-weight neurofilament subunit phosphorylation in cultured rat sympathetic neurons. J. Neurosci. Res 30, 116-123.[Medline]

Cole, J. S., Messing, A., Trojanowski, J. Q. and Lee, V. M. Y (1994). Modulation of axon diameter and neurofilaments by hypomyelinating schwann cells in transgenic mice. J. Neurosci 14, 6956-6966.[Abstract]

Dahl, D (1988). Early and late appearance of neurofilament phosphorylated epitopes in rat nervous system development: in vivo and in vitro study with monoclonal antibodies. J. Neurosci. Res 20, 431-441.[Medline]

Doherty, P., Fazeli, M. S. and Walsh, F. S (1995). The neural cell adhesion molecule and synaptic plasticity. J. Neurobiol 26, 437-446.[Medline]

de Waegh, S. M., Lee, V. M. Y. and Brady, S. T (1992). Local modulation of neurofilament phosphorylation, axonal caliber, and slow axonal transport by myelinating Schwann cells. Cell 68, 451-463.[Medline]

Ernfors, P., Lee, K.-F. and Jaenisch, R (1994). Mice lacking brain-derived neurotrophic factor develop with sensory deficits. Nature 368, 147-150.[Medline]

Eyer, J. and Peterson, A (1994). Neurofilament-deficient axons and perikaryal aggregates in viable transgenic mice expressing a neurofilament--galactosidase fusion protein. Neuron 12, 389-405.[Medline]

Foster, G. A., Dahl, D. and Lee, V. M.-Y (1987). Temporal and topographic relationship between the phosphorylated and nonphosphorylated epitopes on the 200 KDa neurofilament protein during development in vitro. J. Neurosci 7, 2651-2663.[Abstract]

Ghosh, A., Carnahan, J. and Greenberg, M. E (1994). Requirement for BDNF in activity-dependent survival of cortical neurons. Science 263, 1618-1623.[Abstract/Free Full Text]

Giasson, B. I and Mushynski, W. E (1996). Aberrant stress-induced phosphorylation of perikaryal neurofilaments. J. Biol. Chem 271, 30404-30409.[Abstract/Free Full Text]

Giasson, B. I. and Mushynski, W. E (1997). Study of proline-directed protein kinases involved in phosphorylation of the heavy neurofilament subunit. J. Neurosci 17, 9466-9472.[Abstract/Free Full Text]

Gotow, T., Tanaka, T., Nakamura, Y. and Takeda, M (1994). Dephosphorylation of the largest neurofilament subunit protein influences the structure of crossbridges in reassembed neurofilaments. J. Cell Sci 107, 1949-1957.[Abstract]

Griffin, J. W. and Watson, D. F (1988). Axonal transport in neurological disease. Ann. Neurol 23, 3-13.[Medline]

Guillemot, F., Lo, L. C., Johnson, J. E., Auerbach, A., Andesrson, D. J. and Jyner, A. L (1993). Mammalian achaete-scute homolog 1 is required for the early development of olfactory and autonomic neurons. Cell 75, 463-476.[Medline]

Hirokawa, N., Glicksman, M. A. and Willard, M. B (1984). Organization of mammalian neurofilament polypeptides within the neuronal cytoskeleton. J. Cell Biol 98, 1523-1536.[Abstract/Free Full Text]

Hisanaga, S. and Hirokawa, N (1989). The effects of dephosphorylation on the structure of the projections of neurofilament. J. Neurosci 9, 959-966.[Abstract]

Hisanaga, S. and Hirokawa, N (1990). Dephosphorylation-induced interactions of neurofilaments with microtubules. J. Biol. Chem 265, 21852-21858.[Abstract/Free Full Text]

Hisanaga, S., Ishiguro, K., Uchida, T., Okumura, E., Okano, T. and Kishimoto, T (1993). Tau protein kinase II has a similar characteristic to cdc2 kinase for phosphorylating neurofilament proteins. J. Biol. Chem 268, 15056-15060.[Abstract/Free Full Text]

Hisanaga, S., Uchiyama, M., Hosoi, T., Yamada, K., Honma, N., Ishiguro, K., Uchida, T., Dahl, D., Ohsumi, K. and Kishimoto, T (1995). Porcine brain neurofilament-H tail domain kinase: its identification as cdk5/p26 complex and comparison with cdc2/cyclin B kinase. Cell. Motil. Cytoskel 31, 283-297.[Medline]

Hoffman, P. N., Griffin, J. W. and Price, D. L (1984). Control of axonal caliber by neurofilament transport. J. Cell Biol 99, 705-714.[Abstract/Free Full Text]

Hoffman, P. N. and Cleveland, D. W (1988). Neurofilament and tubulin expression recapitulates the developmental program during axonalregeneration: induction of a specific -tubulin isotype. Proc. Natl. Acad. Sci. USA 85, 4530-4533.[Abstract/Free Full Text]

Ibanez, C. F (1998). Emerging themes in structural biology of neurotrophic factors. Trends Neurosci 21, 438-444.[Medline]

Jareb, M. and Banker, G (1997). Inhibition of axonal growth by brefeldin A in hippocampal neurons in culture. J. Neurosci 17, 8955-8963.[Abstract/Free Full Text]

Kyriakis, J. M. and Avruch, J (1996). Sounding the alarm: protein kinase cascades activated by stress and inflammation. J. Biol. Chem 271, 24313-24316.[Free Full Text]

Laemmli, U. K (1970). Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature 227, 680-685.[Medline]

Lew, J. and Wang, J. H (1995). Neuronal cdc2-like kinase. Trends Biochem 20, 33-37.[Medline]

Liem, R. K (1992). Molecular biology of neuronal intermediate filaments. Curr. Opin. Cell Biol 5, 12-16.

Lindenbaum, M. H., Carbonetto, S. and Mushynski, W. E (1987). Nerve growth factor enhances the synthesis, phosphorylation, and metabolic stability of neurofilament proteins in PC12 cells. J. Biol. Chem 262, 605-610.[Abstract/Free Full Text]

Mata, M., Kupina, N. and Fink, D. J (1992). Phosphorylation-dependent neurofilament epitopes are reduced at the node of Ranvier. J. Neurocytol 21, 199-210.[Medline]

Marsh, H. N., Scholz, W. K., Lamballe, F., Klein, R., Nanduri, V. Barbacid, M., Palfrey, H. C (1993). Signal transduction events mediated by the BDNF receptor gp145 trk Bin primary hippocampal pyramidal cell culture. J. Neurosci 13, 4281-4292.[Abstract]

Nigg, E. A (1995). Cyclin-dependent protein kinases: key regulators of the eukaryotic cell cycle. BioEssays 17, 471-480.[Medline]

Nikolic, M., Dudek, H., Kwon, Y. T., Ramos, Y. F. and Tsai, L. H (1996). The cdk5/p35 kinase is essential for neurite outgrowth during neuronal differentiation. Genes Dev 10, 816-825.[Abstract/Free Full Text]

Nishiki, T., Kamata, Y., Nemoto, Y., Omori, A, Ito, T., Takahashi, M. and Kozaki, S (1994). Identification of protein receptor for Clostridium botulinum type B neurotoxin in rat brain synaptosomes. J. Biol. Chem 269, 10498-10503.[Abstract/Free Full Text]

Nixon, R. A. and Shea, T. B (1992). Dynamics of neuronal intermediate filaments: a developmental perspective. Cell Motil. Cytoskel 22, 81-91.[Medline]

Nixon, R. A., Paskevich, P. A., Sihag, R. K. and Thayer, C. Y (1994). Phosphorylation on carboxyl terminus domains of neurofilament proteins in retinal ganglion cell neurons in vivo: influences on regional neurofilament accumulation, interneurofilament spacing, and axon caliber. J. Cell Biol 126, 1031-1046.[Abstract/Free Full Text]

Nye, S., Squinto, S., Glass, D., Stitt, T. and Hantzopoulos, G (1992). K252a and staurosporine selectively block autophosphorylation of neurotrophin receptors and neurotrophin-mediated responses. Mol. Biol. Cell 3, 677-686.[Abstract]

Ohara, O., Gahara, Y., Miyake, T., Teraoka, H. and Kitamura, T (1993). Neurofilament deficiency in quail caused by nonsense mutation in neurofilament-L gene. J. Cell Biol 121, 1031-1046.[Abstract/Free Full Text]

Pant, H. C. and Veeranna (1995). Neurofilament phosphorylation. Biochem. Cell. Biol 73, 575-592.[Medline]

Patterson, P. H (1992). The emerging neuropoietic cytokine family: first CDF/LIF, CNTF and IL-6; next ONC, MGF, GCSF?. Curr. Opin. Neurobiol 2, 94-97.[Medline]

Pigino, G., Paglini, G., Ulloa, L., Avila, J. and Caceres. A (1997). Analysis of the expression, distribution and function of cyclin dependent kinase 5 (cdk5) in developing cerebellar macroneurons. J. Cell Sci 110, 157-270.[Abstract]

Poon, R. Y., Lew, J. and Hunter, T (1997). Identification of functional domains in the neronal Cdk5 actitvator protein. J. Biol. Chem 272, 5703-5708.[Abstract/Free Full Text]

Qi, Z., Huang, Q-Q., Lee, K-Y., Lew, J. and Wang, J. H (1995). Reconstitution of neuronal cdc2-like kinase from bacteria-expressed cdk5 and an active fragment of the brain-specific activator. J. Biol. Chem 270, 10847-10854.[Abstract/Free Full Text]

Saito, T., Shima, H., Osawa, Y., Nagao, M., Hemming, B. A., Kishimoto, T. and Hisanaga, S (1995). Neurofilament-associated protein phosphatase 2A: its possible role in preserving neurofilaments in filamentous states. Biochemistry 34, 7376-7384.[Medline]

Saito, T., Ishiguro, K., Onuki, R., Nagai, Y., Kishimoto, T. and Hisanaga, S (1998). Okadaic acid-stimulated degradation of p35, an activator of CDK5, by proteasome in cultured neurons. Biochem. Biophys. Res. Commun 252, 775-778.[Medline]

Schilling, K., Scherbaum, Ch. and Pilgrim, Ch (1988). Developmental changes of neuron-specific enolase and neurofilament proteins in primary neural culture. Histochem 89, 295-299.

Shaw, G. and Weber, K (1982). Differential expression of neurofilament triplet proteins in brain development. Nature 298, 277-279.[Medline]

Shea, T. B., Sihag, R. K. and Nixon, R. A (1988). Neurofilament triplet proteins of NB2a/d1 neuroblastoma: posttranslational modification and incorporation the cytoskeleton during differentiation. Dev. Brain Res 43, 97-109.

Shetty, K. T., Link, W. T. and Pant, H. C (1993). cdc2-like kinase from rat spinal cord specifically phosphorylates KSPXK motifs in neurofilament proteins: isolation and characterization. Proc. Natl. Acad. Sci. USA 90, 6844-6848.[Abstract/Free Full Text]

Sternberger, L. A. and Sternberger, N. H (1983). Monoclonal antibodies distinguish phosphorylated and nonphosphorylated forms of neurofilaments in situ. Proc. Natl. Acad. Sci. USA 80, 6126-6130.[Abstract/Free Full Text]

Sun, D., Leung, C. L. and Liem, R. K. H (1996). Phosphorylation of the high molecular weight neurofilament protein (NF-H) by Cdk5 and p35. J. Biol. Chem 271, 14245-14251.[Abstract/Free Full Text]

Takeda, Y., Asou, H., Murakami, Y., Miura, M., Kobayashi, M. and Uyemura, K (1996). A nonneuronal isoform of cell adhesion molecule L1: tissue-specific expression and functional analysis. J. Neurochem 66, 2338-2349.[Medline]

Thoenen, H (1995). Neurotrophins and neuronal plasticity. Science 270, 593-598.[Abstract/Free Full Text]

Tsai, L.-H., Delalle, I., Caviness, V. S., Chae, T. and Harlow, E (1994). p35 is a neural-specific regulatory subunit of cyclin-dependent kinase 5. Nature 371, 419-423.[Medline]

Uemura, T (1998). The cadherin superfamily at the synapse: more members, more missions. Cell 93, 1095-1098.[Medline]

Veeranna, Amin, N. D., Ahn, N. G., Jaffe, H., Winters, C. A., Grant, P. and Pant, H. C (1998). Mitogen-activated protein kinases (Erk1,2). phosphorylate Lys-Ser-Pro (KSP) repeats in neurofilament proteins NF-H and NF-M. J. Neurosci 18, 4008-4021.[Abstract/Free Full Text]




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