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Nature|July 15, 1982
Differential expression of neurofilament triplet proteins in brain developmentG Shaw, K WeberEuropean Journal of Cell Biology|June 1, 1981
Actin rearrangement in living cells revealed by microinjection of a fluorescent phalloidin derivativeJ Wehland, K WeberJournal of Virology|November 1, 1982
A phosphorylated basic vaccinia virion polypeptide of molecular weight 11,000 is exposed on the surface of mature particles and interacts with actin-containing cytoskeletal elementsG Hiller, K WeberThe EMBO Journal|January 1, 1982
The amino acid sequence of chicken muscle desmin provides a common structural model for intermediate filament proteinsN Geisler, K WeberEuropean Journal of Cell Biology|February 1, 1988
Intermediate filaments in the giant muscle cells of the nematode Ascaris lumbricoides; abundance and three-dimensional complexity of arrangementsE Bartnik, K WeberThe EMBO Journal|March 15, 1994
Intron positions in actin genes seem unrelated to the secondary structure of the proteinK Weber, W KabschThe Journal of Biological Chemistry|February 10, 1985
Calcium-dependent conformational changes in the 36-kDa subunit of intestinal protein I related to the cellular 36-kDa target of Rous sarcoma virus tyrosine kinaseV Gerke, K WeberExperimental Cell Research|May 1, 1987
Cytoplasmic intermediate filament proteins and the nuclear lamins A, B and C share the IFA epitopeM Osborn, K WeberThe EMBO Journal|November 1, 1985
The regulatory chain in the p36-kd substrate complex of viral tyrosine-specific protein kinases is related in sequence to the S-100 protein of glial cellsV Gerke, K WeberProceedings of the National Academy of Sciences of the United States of America|March 1, 1978
Mammalian cytoplasmic actins are the products of at least two genes and differ in primary structure in at least 25 identified positions from skeletal muscle actinsJ Vandekerckhove, K WeberPageof 117