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Albers, K. and Fuchs, E (1987). The expression of mutant epidermal keratin cDNAs transfected in simple epithelial and squamous cell carcinoma lines. J. Cell Biol 105, 791-806.[Abstract/Free Full Text]

Albers, K. and Fuchs, E (1989). Expression of mutant keratin cDNAs in epithelial cells reveals possible mechanisms for initiation and assembly of intermediate filaments. J. Cell Biol 108, 1477-1493.[Abstract/Free Full Text]

Bader, B. L., Magin, T. M., Hatzfeld, M. and Franke, W. W (1986). Amino acid sequence and gene organization of cytokeratin no. 19, an exceptional tail-less intermediate filament protein. EMBOJ 5, 1865-1875.[Medline]

Bader, B. L., Magin, T. M., Freudenmann, M., Stumpp, S. and Franke, W. W (1991). Intermediate filaments formed de novo from tail-less cytokeratins in the cytoplasm and in the nucleus. J. Cell Biol 115, 1293-1307.[Abstract/Free Full Text]

Birkenberger, L. and Ip, W (1990). Properties of the desmin tail domain: Studies using synthetic peptide antibodies. J. Cell Biol 111, 2063-2075.[Abstract/Free Full Text]

Bloemendal, H. and Pieper, F. R (1989). Intermediate filaments: known structure, unknown function. Biochim. Biophys. Acta 1007, 245-253.[Medline]

Chin, S. S. M. and Liem, R. K. H (1989). Expression of rat neurofilament proteins NF-L and NF-M in transfected non-neuronal cells. Eur. J. Cell Biol 50, 475-490.[Medline]

Chin, S. S. M., Macioce, P. and Liem, R. K. H (1991). Effects of truncated neurofilament proteins on the endogenous intermediate filaments in transfected fibroblasts. J. Cell Sci 99, 335-350.[Abstract/Free Full Text]

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

Conway, J. F. and Parry, D. A. D (1988). intermediate filament structure: 3. Analysis of sequence homologies. Int. J. Biol. Macromol 10, 79-98.

Crewther, W. G., Dowling, L. M., Steinert, P. M. and Parry, D. A. D (1983). Structure of intermediate filaments. Int. J. Biol. Macromol 5, 267-274.

Eckelt, A., Herrmann, H. and Franke, W. W (1992). Assembly of a tail-less mutant of the intermediate filament protein, vimentin, in vitro and in vivo. Eur. J. Cell Biol 58, 319-330.[Medline]

Franke, W (1987). Homology of a conserved sequence in the tail domain of intermediate filament proteins with the loop region of calcium binding proteins. Cell Biol. Int. Rep 11, 831-.[Medline]

Geisler, N. and Weber, K (1982). The amino acid sequence of chicken muscle desmin provides a common structural model for intermediate filament proteins. EMBO. J 1, 1649-1656.[Medline]

Geisler, N. and Weber, K (1983). Amino acid sequence data on glial fibrillary acidic protein (GFA): implications for the subdivision of intermediate filaments into epithelial and non-epithelial members. EMBOJ 2, 2059-2063.[Medline]

Gill, S. R., Wong, P. C., Monteiro, M. J. and Cleveland, D. W (1990). Assembly properties of dominant and recessive mutations in the small mouse neurofilament (NF-L) subunit. J. Cell Biol 111, 2005-2019.[Abstract/Free Full Text]

Graham, F. L. and van der Eb, A. J (1973). A new technique for the assay of infectivity of human adenovirus 5 DNA. Virology 52, 456-467.[Medline]

Hatzfeld, M. and Weber, K (1990). Tailless keratins assemble into regular intermediate filaments in vitro. J. Cell Sci 97, 317-324.[Abstract/Free Full Text]

Hatzfeld, M. and Weber, K (1991). Modulation of keratin intermediate filament assembly by single amino acid exchanges in the consensus sequence at the C-terminal end of the rod domain. J. Cell Sci 99, 351-362.[Abstract/Free Full Text]

Herrmann, H., Hofmann, I. and Franke, W. W (1992). Identification of a nonapeptide motif in the vimentin head domain involved in intermediate filament assembly. J. Mol. Biol 223, 637-650.[Medline]

Kaufmann, E., Weber, K. and Geisler, N (1985). Intermediate filament forming ability of desmin derivatives lacking either the amino-terminal 67 or the carboxy-terminal 27 residues. J. Mol. Biol 185, 733-742.[Medline]

Kouklis, P. D., Papamarcaki, T., Merdes, A. and Georgatos, S. D (1991). A potential role for the COOH-terminal domain in the lateral packing of type III intermediate filaments. J. Cell Biol 114, 773-786.[Abstract/Free Full Text]

Krauss, S. and Franke, W (1990). Organization and sequence of the human gene encoding cytokeratin 8. Gene 86, 241-249.[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]

Leonard, D. G. B, Gorham, J. D., Cole, P., Greene, L. A. and Ziff, E. B (1988). A nerve growth factor-regulated messenger RNA encodes a new intermediate filament protein. J. Cell Biol 106, 181-193.[Abstract/Free Full Text]

Lu, X. and Lane, E. B (1990). Retrovirus-mediated transgenic keratin expression in cultured fibroblasts: Specific domain functions in keratin stablization and filament formation. Cell 62, 681-696.[Medline]

McCormick, M. B., Kouklis, P., Syder, A. and Fuchs, E (1993). The roles of thd rod end and the tail in vimentin IF assembly and IF network formation. J. Cell Biol 122, 395-407.[Abstract/Free Full Text]

McKeon, F (1991). Nuclear lamin proteins: domains required for nuclear targeting, assembly and cell-cycle-regulated dynamics. Curr. Opin. Cell Biol 3, 82-86.[Medline]

McLachlax, A. D. and Stewart, M (1982). Periodic charge distribution in the intermediate filament proteins desmin and vimentin. J. Mol. Biol 162, 693-698.[Medline]

Nakamura, Y., Takeda, M., Aimoto, S. and Nishimura, T (1992). Assembly regulatory domain of glial fibrillary acidic protein. J. Biol. Chem 267, 23269-23274.[Abstract/Free Full Text]

O'Shea, E. K., Klemm, J. D., Kim, P. S. and Albert, T (1991). X-ray structure of the GCN4 leucine zipper, a two-stranded, parallel coiled-coil. Science 254, 539-544.[Abstract/Free Full Text]

Parker, G. A. and Stark, G. R (1979). Regulation of simian virus 40 transcription: Sensitive analysis of the RNA species present early in infections by virus or viral DNA. Virology 31, 360-369.

Parry, D. A. D and Steinert, P. M (1992). Intermediate filament structure. Curr. Opin. Cell Biol 4, 94-98.[Medline]

Quinlan, R. A., Moir, R. D. and Stewart, M (1989). Expression in Escherichia coli of fragments of glial fibrillary acidic protein: characterization, assembly properties and paracrystal formation. J. Cell Sci 93, 71-83.[Abstract/Free Full Text]

Raats, J. M. H., Pieper, F. R., Vree Egberts, W. T. M., Verrijp, K. N.,Ramaekers, F. C. S. and Bloemendal, H (1990). Assembly of amino-terminally deleted desmin in vimentin-free cells. J. Cell Biol 111, 1971-1985.[Abstract/Free Full Text]

Raats, J. M. H., Henderik, J. B. J., Verdijk, M. and Bloemendal, H (1991). Assembly of carboxy-terminally deleted desmin in vimentin-free cells. Eur. J. Cell Biol 56, 84-103.[Medline]

Raats, J. M., Gerards, W. L. H., Schreuder, M. I. and Bloemendal, H (1992). Biochemical and structural aspects of transiently and stably expressed mutant desmin in vimentin-free and vimentin-containing cells. Eur. J. Cell Biol 58, 108-127.[Medline]

Reeves, S., Helman, L. J., Allison, A. and Israel, M. A (1989). Molecular cloning and primary structure of human glial fibrillary acidic protein. Proc. Nat. Acad. Sci. USA 86, 5178-5182.[Abstract/Free Full Text]

Sanger, F., Coulsen, A. R., Barrel, B. G., Smith, J. H. and Roe, B (1980). Cloning in single-stranded bacteriophage as an aid to rapid DNA sequencing. J. Mol. Biol 143, 161-178.[Medline]

Sarria, A. J., Nordeen, S. K. and Evans, R. M (1990). Regulated expression of vimentin cDNA in cells in the presence and absence of a preexisting vimentin filament network. J. Cell Biol 111, 553-565.[Abstract/Free Full Text]

Silver, P. A (1991). How proteins enter the nucleus. Cell 64, 489-497.[Medline]

Stasiak, P. C., Purkis, P. E., Leigh, I. M. and Lane, E. B (1989). Keratin 19: predicted amino acid sequence and broad tissue distribution suggest it evolved from keratinocyte keratin. J. Invest. Derm 92, 707-716.[Medline]

Steinert, P. M., Steven, A. C and Roop, D. R (1985). The molecular biology of intermediate filaments. Cell 42, 411-420.[Medline]

Steinert, P. M. and Roop, D. R (1988). Molecular and cellular biology of intermediate filaments. Annu. Rev. Biochem 57, 593-625.[Medline]

Steinert, P. M. and Parry, D. A. D (1993). The conserved H1 domain of the type II keratin 1 chain plays an essential role in the alignment of nearest neighbor molecules in mouse and human keratin 1/keratin 10 intermediate filaments at the two-to four-molecule level of structure. J. Biol. Chem 268, 2878-2887.[Abstract/Free Full Text]

Traub, P. and Vorgias, C (1983). Involvement of the N-terminal peptide of vimentin in the formation of intermediate filaments. J. Cell Sci 63, 43-67.[Abstract]

van den Heuvel, R. M. M., van Eys, G. J. J. M., Ramaekers, F. C. S., Quaz, W. J., Vree Egberts, W. T. M., Schaart, G. and Cuypers, H. T. M (1987). Intermediate filament formation after transfection with modified hamster vimentin and desmin genes. J. Cell Sci 88, 475-482.[Abstract/Free Full Text]

Wang, E., Cairncross, J. G. and Liem, R. K. H (1984). Identification of glial filament protein and vimentin in the same intermediate filament system in human glioma cells. Proc. Nat. Acad. Sci. USA 81, 2102-2106.[Abstract/Free Full Text]

Westermark, B (1973). The deficient density-dependent growth control of human malignant glioma cells and virus-transformed glia-like cells in culture. Int. J. Cancer 12, 438-451.[Medline]

Wong, P. C. and Cleveland, D. W (1990). Characterization of domain and recessive assembly-defective mutations in mouse neurofilament NF-M. J. Cell Biol 111, 1987-2003.[Abstract/Free Full Text]


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