Rieger et al., Glossary of Genetics and Cytogenetics, pp. 17-18, 1976.* |
Lazar et al., Molecular and Cellular Biology 8:1247-1252, 1988.* |
Burgess et al., The Journal of Cell Biology 111:2129-2138, 1990.* |
Blangy et al. (1995) Cell 83:1159-69, “Phosphorylation by p34cdc2 regulates spindle association of human Eg5, a kinesin-related motor essential for bipolar spindle formation in vivo”. |
Drummond et al. (1998) J. Cell Sci.111:853-65 “Mutations in the bimC box of Cut7 indicate divergence of regulation within the bimC family of kinesin related proteins”. |
Gaglio et al. (1996) J. Cell Biol. 135:399-414 “Opposing motor activities are required for the organization of the mammalian mitotic spindle pole”. |
Heck et al. (1993) J. Cell Biol.123:665-79 “The kinesin-like protein KLP61F is essential for mitosis I Drosophila”. |
Hoyt et al. (1992) J. Cell Biol.118:109-120 “Two S. cerevisiae kinesin-related gene products required for mitotic spindle assembly”. |
Kashina et al. (1996) Nature 379:270-2 “A bipolar kinesin”. |
Kashina et al. (1997) Biochim. Biophys. Acta 1357:257-71 “The bimC family of kinesins: essential bipolar mitotic motors driving centrosome separation”. |
Roof et al. (1992) J. Cell Biol. 188:95-108 “Kinesin-related proteins required for assembly of the mitotic spindle”. |
Sawin et al. (1992) Nature 359:540-3 “Mitotic spindle organization by a plus-end-directed microtubule motor”. |
Sawin et al. (1995) Proc. Natl. Acad. Sci. USA 92:4289-93 “Mutations in the kinesin-like protein disrupting localization to the mitotic spindle”. |
Sharp et al. (1999) J. Cell Biol. 144:125-138 “The bipolar kinesin, KLP61F, cross-links microtubules within interpolar microtubule bundles of Drosophila embryonic mitotic spindles”. |
Walczak et al. (1998) Curr. Biol. 8:903-13 “A model for the proposed roles of different microtubule-based motor proteins in establishing spindle polarity”. |
Whitehead et al. (1998) J. Cell Sci. 111:2551-61 “Expanding the role of HsEg5 within the mitotic and post-mitotic phases of the cell cycle”. |
Mayer et al. (1999) Science 286:971-4 “Small molecule inhibition of mitotic spindle bipolarity identified in phenotype-based screens”. |
Blangy et al. (1977) J Biol Chem 272:19418-24 “Phosphorylation by p34cdc2 protein kinase regulates binding of the kinesin-related motor HsEg5 to the dynactin subunit p150”. |
Blangy et al. (1998) Cell Motil Cytoskeleton 40:174-82 “Rigor-type mutation in the kinesin-related protein HsEg5 changes its subcellular localization and induces microtubule bundling”. |
Crevel et al. (1997) J Mol Biol 273:160-70 “Kinetic evidence for low chemical processivity in ncd and Eg5”. |
Giet et al. (1999) J Biol Chem 274:15005-13 “The Xenopus laevis aurora-related protein kinase pEg2 associates with and phosphorylates the kinesin-related protein XIEg5”. |
Kapoor et al. (1999) Proc Natl Acad Sci U S A 96:9106-11 “Allele-specific activators and inhibitors for kinesin”. |
Lockhart et al. (1996) Biochemistry 35:2365-73 “Kinetics and motility of the Eg5 microtubule motor”. |
Hackney (1994) J. Biol. Chem. 269:16508-16511 “The rate-limiting step in microtubule-stimulated ATP hydrolysis by dimeric kinesin head domains occurs while bound to the microtubule”. |
Goldstein (1993) Annu. Rev. Genet. 27:319-351 “With apologies to Scheherazade: Tails of 1001 kinesin motors”. |
Desai et al. (1999) Cell 96:69-78 “Kin I kinesins are microtubule destabilizing enzymes”. |
Walczak et al. (1996) Cell 84:37-47 “XKCM1: A Xenopus kinesin-related protein that regulates microtubule dynamics during mitotic spindle assembly”. |
Whitehead et al. (1995) GenBank Accession Number U37426, versions 1151084 and 1171152. |
Whitehead et al. (1996) Arthritis and Rheumatism 39:1635-1642 “The spindle kinesin-like protein HsEg5 is an autoantigen in systemic lupus erythematosus”. |
Le Guellec et al. (1991) Mol. Cell Biol. 11:3395-3398 Cloning by differential screening of a Xenopus cDNA that encodes a kinesin-related protein. |
Cole et al. (1994) J. Biol. Chem. 269:22913-22916 “A “slow” homotetrameric kinesin-related motor protein purified from Drosphila embryos”. |
Kaiser et al.,All-trans-Retonic Acid-mediated Growth Inhibition Involves Inhibition of Human Kinesin-related Protein HsEg5, Jul. 1999, The Journal of Biological Chemistry, vol. 274, No. 27, Issue of Jul. 2, 1999, pp 18925-18931. |
Hopkins, Seth C. et al, Inhibitors of Kinesin Activity from Structure-Based Computer Screening, Feb. 18, 2000, Biochemistry 2000, 39, pp 2805-2814. |
Mayer, Thomas U. et al., Inhibitor of Mitotic Spindle Bipolarity Identified in a Phenotype-Based Screen, Oct. 26, 1999, Science, vol. 286, pp 971-974. |
European Search Report in Corresponding PCT application PCT/US00/29570. |
Schwartz, Gerald P., et al.; A superactive insulin: [B10-Aspartic acid] insulin (human); Proc. Natl. Acad. Sci USA; Sep. 1987; pp. 6408-6411; vol. 84. |
Lin, Michael C., et al; Stucture Function Relationships in Glucagon: Properties of Highly Purified Des-His1-, Monoiodo-, and [Des-Asn28, Thr29] (homoserine lactone27)-glucon; Biochemistry, 1975; pp. 1559-1563; vol. 14, No. 8. |
Inoue, Yuichi, et al; Movements of truncated kinesin fragments with a short or an artificial flexible neck; Proc Natl. Acad, Sci. USA; Jul. 1997; pp. 7275-7280; vol. 94. |