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Allan, V. and Vale, R (1994). Movement of membrane tubules along microtubules in vitro: evidence for specialised sites of motor attachment. J. Cell Sci 107, 1885-1897.[Abstract]

Briesewitz, R., Epstein, M. R. and E. E. Marcantonio (1993). Expression of native and truncated forms of the human integrin alpha 1 subunit. J. Biol. Chem 268, 2989-2996.[Abstract/Free Full Text]

Chalfie, M., Tu, Y., Euskirchen, G., Ward, W. W. and Prasher, D. C (1994). Green fluorescent protein as a marker for gene expression. Science 263, 802-805.[Abstract/Free Full Text]

Chen, W.-J. and Liem, R. K. H (1994). The endless story of the glial fibrillary acidic protein. J. Cell Sci 107, 2299-2311.[Abstract]

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

Colucci-Guyon, E., Portier, M. M., Dunia, I., Paulin, D., Pournin, S. and Babinet, C (1994). Mice lacking vimentin develop and reproduce without an obvious phenotype. Cell 79, 679-694.[Medline]

Cormack, B. P., Valdivia, R. H. and Falkow, S (1996). FACS-optimized mutants of the green fluorescent protein (GFP). Gene 173, 33-38.[Medline]

Eyer, J. and Peterson, A (1994). Neurofilament-deficient axons and perikaryal aaggregates in viable transgenic mice expressing a neurofilament--galactosidase fusion protein. Neuron 19, 389-405.

Feiguin F, A. Ferreira, Kosik, K. S. and Caceres, A (1994). Kinesin-mediated organelle translocation revealed by specific cellular manipulations. J. Cell Biol 127, 1021-1039.[Abstract/Free Full Text]

Fuchs, E. and Weber, K (1994). Intermediate filaments: structure, dynamics, function, and disease. Annu. Rev. Biochem 63, 345-382.[Medline]

Gawlitta, W., Osborn, M. and Weber, K (1981). Coiling of intermediate filaments induced by microinjection of a vimentin-specific antibody does not interfere with locomotion and mitosis. J.Cell Biol 91, 827-836.[Abstract/Free Full Text]

Georgatos, S. D. and Blobel, G (1987). Two distinct attachment sites for vimentin along the plasma membrane and the nuclear envelope in avian erythrocytes: a basis for a vectorial assembly of intermediate filaments. J. Cell Biol 105, 105-115.[Abstract/Free Full Text]

Gurland, G. and Gundersen,G. G (1995). Stable, detyrosinated microtubules function to localize vimentin intermediate filaments in fibroblasts. J. Cell Biol 131, 1275-1290.[Abstract/Free Full Text]

Heins, S. and Aebi,U (1994). Making heads and tails of intermediate filament assembly, dynamics and networks. Curr. Opin. Cell Biol 6, 25-33.[Medline]

Ho, C.-L., Chin, S. S., Carnevale, K. and Liem, R. K. H (1995). Translation initiation and assembly of peripherin in cultural cells. Eur. J. Cell Biol 68, 103-112.[Medline]

Houseweart, M. K. and Cleveland, D. W (1998). Intermediate filaments and their associated proteins: multiple dynamic personalities. Curr. Opin. Cell Biol 10, 93-101.[Medline]

Klymkowsky, M. W (1981). Intermediate filaments in 3T3 cells collapse afterintracellular injection of a monoclonal anti-intermediate filament antibody. Nature 291, 249-251.[Medline]

Kouklis, P. D., Traub, P. and Georgatos.S. D (1992). Involvement of the consensus sequence motif at coil 2b in the assembly and stability of vimentin filaments. J. Cell Sci 102, 31-41.[Abstract/Free Full Text]

Liao, G. and Gundersen, G. G (1998). Kinesin is a candidate for crossbridging microtubules and intermediate filaments: Selective binding of kinesin to detyrosinated tubulin and vimentin. J. Biol. Chem 273, 9797-9803.[Abstract/Free Full Text]

McLean, W. H. and Lane, E. B (1995). Intermediate filaments in disease. Curr. Opin. CellBiol 7, 118-125.[Medline]

Milner, D. J, Weitzer, G., Tran, D., Bradley, A. and Capetanaki,Y (1996). Disruption of muscle architecture and myocardial degeneration in mice lacking desmin. J. Cell Biol 134, 1255-1270.[Abstract/Free Full Text]

Mittal, B., Sanger, J. M. and Sanger, J. W (1989). Visualization of intermediate filaments in living cells using fluorescently labeled desmin. Cell Motil. Cytoskel 12, 127-138.[Medline]

Pruss, R. M., Mirsky, R., Raff, M. C. , Thorpe, R. , Dowding, A. J. and Anderton,B. H (1981). All classes of intermediate filaments share a common antigenic determinant defined by a monoclonal antibody. Cell 27, 419-428.[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]

Svitkina, T. M., Verkhovsky, A. B. and Borisy,G. G (1996). Plectin sidearms mediate interactions with microtubules and other components of the cytoskeleton. J. Cell Biol 135, 991-1007.[Abstract/Free Full Text]

Vikstrom, K. L., Lim, S.-S., Goldman, R. D. and Borisy, G. G (1992). Steady state dynamics of intermediate filament networks. J. Cell Biol 118, 121-130.[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]

Zhu, Q., Couillard-Despres, S. and Julien, J. P (1997). Delayed maturation of regenerating myelinated axons in mice lacking neurofilaments. Exp. Neurol 148, 299-316.[Medline]


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