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Archer, D. R., Watson, D. F. and Griffin, J. W (1994). Phosphorylation-dependent immunoreactivity of neurofilaments and the rate of slow axonal transport in the central and peripheral axons of the rat dorsal root ganglion. J. Neurochem 62, 1119-1125.[Medline]

Baas, P. W. and Black, M. M (1990). Individual microtubules in the axon consist of domains that differ in both composition and stability. J. Cell Biol 111, 495-509.[Abstract/Free Full Text]

Bennett, G. S., Tapscott, S. J., DiLullo, C. and Holtzer, H (1984). Differential binding of antibodies against the neurofilament triplet proteins in different avian neurons. Brain Res 304, 291-302.[Medline]

Bennett, G. S. and DiLullo, C (1985). Slow post-translational modification of a neurofilament protein. J. Cell Biol 100, 1799-1804.[Abstract/Free Full Text]

Benson, D. L., Mandell, J. W., Shaw, G. and Banker, G (1996). Compartmentation of alpha-internexin and neurofilament triplet proteins in cultured hippocampal neurons. J. Neurocytol 25, 181-196.[Medline]

Black, M. M., Keyser, P. and Sobel, E (1986). Interval between the synthesisand assembly of cytoskeletal proteins in cultured neurons. J. Neurosci 6, 1004-1012.[Abstract]

Black, M. M., Slaughter, T. and Fischer, I (1994). Microtubule-associated protein 1b (MAP1b) is concentrated in the distal region of growing axons. J. Neurosci 14, 857-870.[Abstract]

Bottenstein, J. E. and Sato, G. H (1979). Growth of a rat neuroblastoma cell line in serum-free supplemented media. Proc. Nat. Acad. Sci. USA 76, 514-517.[Abstract/Free Full Text]

Brown, A., Slaughter, T. and Black, M. M (1992). Newly assembled microtubules are concentrated in the proximal and distal regions of growing axons. J. Cell Biol 119, 867-882.[Abstract/Free Full Text]

Brown, A., Li, Y., Slaughter, T. and Black, M. M (1993). Composite microtubules of the axon: quantitative analysis of tyrosinated and acetylated tubulin along individual axonal microtubules. J. Cell Sci 104, 339-352.[Abstract]

Brown, A (1997). Visualization of single neurofilaments by immunofluorescence microscopy of splayed axonal cytoskeletons. Cell Motil. Cytoskel 38, 133-145.[Medline]

Carden, M. J., Schlaepfer, W. W. and Lee, V. M (1985). The structure, biochemical properties, and immunogenicity of neurofilament peripheral regions are determined by phosphorylation state. J. Biol. Chem 260, 9805-9817.[Abstract/Free Full Text]

Carden, M. J., Trojanowski, J. Q., Schlaepfer, W. W. and Lee, V. M (1987). Two-stage expression of neurofilament polypeptides during rat neurogenesis with early establishment of adult phosphorylation patterns. J. Neurosci 7, 3489-3504.[Abstract]

Chin, T. K., Harding, S. E. and Eagles, P. A. M (1989). Characterization of two proteolytically derived soluble polypeptides from the neurofilament triplet components NFM and NFH. Biochem. J 264, 53-60.[Medline]

Ching, G. Y. and Liem, R. K (1993). Assembly of type IV neuronal intermediate filaments in nonneuronal cells in the absence of preexisting cytoplasmic intermediate filaments. J. Cell Biol 122, 1323-1335.[Abstract/Free Full Text]

de Waegh, S. M., Lee, V. M. 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]

Elhanany, E., Jaffe, H., Link, W. T., Sheeley, D. M., Gainer, H. and Pant, H. C (1994). Identification of endogenously phosphorylated KSP sites in the high-molecular-weight rat neurofilament protein. J. Neurochem 63, 2324-2335.[Medline]

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

Georges, E., Lefebvre, S. and Mushynski, W. E (1986). Dephosphorylation of neurofilaments by exogenous phosphatases has no effect on reassembly of subunits. J. Neurochem 47, 477-483.[Medline]

Georges, E. and Mushynski, W. E (1987). Chemical modification of charged amino acid moieties alters the electrophoretic mobilities of neurofilament subunits on SDS/polyacrylamide gels. Eur. J. Biochem 165, 281-287.[Medline]

Gotow, T. and Tanaka, J (1994). Phosphorylation of neurofilament H subunit as related to arrangement of neurofilaments. J. Neurosci. Res 37, 691-713.[Medline]

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

Harris, J., Ayyub, C. and Shaw, G (1991). A molecular dissection of the carboxyterminal tails of the major neurofilament subunits NF-M and NF-H. J. Neurosci. Res 30, 47-62.[Medline]

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., Gonda, Y., Inagaki, M., Ikai, A. and Hirokawa, N (1990). Effects of phosphorylation of the neurofilament L-protein on filamentous structures. Cell Reg 1, 237-248.[Medline]

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

Hisanaga, S., Yasugawa, S., Yamakawa, T., Miyamoto, E., Ikebe, M., Uchiyama, M. and Kishimoto, T (1993). Dephosphorylation of microtubule-binding sites at the neurofilament-H tail domain by alkaline, acid and protein phosphatases. J. Biochem 113, 705-709.

Hisanaga, S., Matsuoka, Y., Nishizawa, K., Saito, T., Inagaki, M. and Hirokawa, N (1994). Phosphorylation of native and reassembled neurofilaments composed of NF-L, NF-M, and NF-H by the catalytic subunit of cAMP-dependent protein kinase. Mol. Biol. Cell 5, 161-172.[Abstract]

Julien, J.-P. and Mushynski, W. E (1983). The distribution of phosphorylation sites among identified proteolytic fragments of mammalian neurofilaments. J. Biol. Chem 258, 4019-4025.[Abstract/Free Full Text]

Landmesser, L. and Swain, S (1992). Temporal and spatial modulation of a cytoskeletal antigen during peripheral axonal pathfinding. Neuron 8, 291-305.[Medline]

Lee, M. K., Xu, Z., Wong, P. C. and Cleveland, D. W (1993). Neurofilaments are obligate heteropolymers in vivo. J. Cell Biol 122, 1337-1350.[Abstract/Free Full Text]

Lee, M. K. and Cleveland, D. W (1996). Neuronal intermediate filaments. Annu. Rev. Neurosci 19, 187-217.[Medline]

Lee, V. M (1985). Neurofilament protein abnormalities in PC12 cells: comparison with neurofilament proteins of normal cultured rat sympathetic neurons. J. Neurosci 5, 3039-3046.[Abstract]

Lee, V. M., Carden, M. J. and Trojanowski, J. Q (1986). Novel monoclonal antibodies provide evidence for the in situ existence of a nonphosphorylated form of the largest neurofilament subunit. J. Neurosci 6, 850-858.[Abstract]

Lee, V. M., Carden, M. J., Schlaepfer, W. W. and Trojanowski, J. Q (1987). Monoclonal antibodies distinguish several differentially phosphorylated states of the two largest rat neurofilament subunits (NF-H and NF-M) and demonstrate their existence in the normal nervous system of adult rats. J. Neurosci 7, 3474-3488.[Abstract]

Li, Y. and Black, M. M (1996). Microtubule assembly and turnover in growing axons. J. Neurosci 16, 531-544.[Abstract/Free Full Text]

Mandell, J. W. and Banker, G. A (1996). A spatial gradient of tau protein phosphorylation in nascent axons. J. Neurosci 16, 5727-5740.[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]

Nixon, R. A. and Lewis, S. E (1986). Differential turnover of phosphate groups on neurofilament subunits in mammalian neurons in vivo. J. Biol. Chem 261, 16298-16301.[Abstract/Free Full Text]

Nixon, R. A., Lewis, S. E. and Marotta, C. A (1987). Post-translational modification of neurofilament proteins by phosphate during axoplasmic transport in retinal ganglion cell neurons. J. Neurosci 7, 1145-1158.[Abstract]

Nixon, R. A. and Sihag, R. K (1991). Neurofilament phosphorylation: a new look at regulation and function. Trends Neurosci 14, 501-506.[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]

Oblinger, M (1987). Characterization of the post-translational modification of the mammalian high molecular weight neurofilament protein in vivo. J. Neurosci 7, 2510-2521.[Abstract]

Pachter, J. S. and Liem, R. K. H (1984). The differential appearance of neurofilament triplet polypeptides in the developing rat optic nerve. Dev. Biol 103, 200-210.[Medline]

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

Pijak, D. S., Hall, G. F., Tenicki, P. J., Boulos, A. S., Lurie, D. I. and Selzer, M. E (1996). Neurofilament spacing, phosphorylation, and axon diameter in regenerating and uninjured lamprey axons. J. Comp. Neurol 368, 569-581.[Medline]

Riederer, B. M., Porchet, R. and Marugg, R. A (1996). Differential expression and modification of neurofilament triplet proteins during cat cerebellar development. J. Comp. Neurol 364, 704-717.[Medline]

Rochlin, M. W., Wickline, K. M. and Bridgman, P. C (1996). Microtubule stability decreases axon elongation but not axoplasm production. J. Neurosci 16, 3236-3246.[Abstract/Free Full Text]

Saito, T., Shima, H., Osawa, Y., Nagao, M., Hemmings, B., 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]

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

Shaw, G., Banker, G. A. and Weber, K (1985). An immunofluorescence study of neurofilament protein expression by developing hippocampal neurons in tissue culture. Eur. J. Cell Biol 39, 205-216.[Medline]

Slaughter, T., Wang, J. and Black, M. M (1997). Microtubule transport from the cell body into the axons of growing neurons. J. Neurosci 17, 5807-5819.[Abstract/Free Full Text]

Starr, R., Attema, B., DeVries, G. H. and Monteiro, M. J (1996). Neurofilament phosphorylation is modulated by myelination. J. Neurosci. Res 44, 328-337.[Medline]

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

Szaro, B., Lee, V. and Gainer, H (1989). Spatial and temporal expression of phosphorylated and non-phosphorylated forms of the neurofilament proteinsin the developing nervous system of Xenopus laevis. Dev. Brain Res 48, 87-103.[Medline]

Szaro, B. G., Whitnall, M. H. and Gainer, H (1990). Phosphorylation-dependent epitopes on neurofilament proteins and neurofilament densities differ in axons in the corticospinal and primary sensory dorsal column tracts in the rat spinal cord. J. Comp. Neurol 302, 220-235.[Medline]

Trojanowski, J. Q., Kelsten, M. L. and Lee, V. M.-Y (1989). Phosphate-dependent and independent neurofilament protein epitopes are expressed throughout the cell cycle in human medulloblastoma (D283 MED) cells. Am. J. Pathol 135, 747-758.[Abstract]

Veeranna, Sheety, K. T., Link, W. T., Jaffe, H., Wang, J. and Pant, H. C (1995). Neuronal cyclin-dependent kinase-5 phosphorylation sites in neurofilament protein (NF-H) are dephosphorylated by protein phosphatase 2A. J. Neurochem 64, 2681-2690.[Medline]

Xu, Z. S., Liu, W. S. and Willard, M. B (1992). Identification of six phosphorylation sites in the COOH-terminal tail region of the rat neurofilament protein M. J. Biol. Chem 267, 4467-4471.[Abstract/Free Full Text]




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