Transforming acidic coiled-coil-containing protein 3 is a protein that in humans is encoded by the TACC3gene.[1][2]
The function of this gene has not yet been determined; however, it is speculated that it may be involved in cell growth and differentiation. Expression of this gene is up-regulated in some cancer cell lines, and in embryonic day 15 in mice.[2]
References
↑Schneider L, Essmann F, Kletke A, Rio P, Hanenberg H, Wetzel W, Schulze-Osthoff K, Nurnberg B, Piekorz RP (Oct 2007). "The transforming acidic coiled coil 3 protein is essential for spindle-dependent chromosome alignment and mitotic survival". J Biol Chem. 282 (40): 29273–83. doi:10.1074/jbc.M704151200. PMID17675670.
Lappin TR, Mullan RN, Stewart JP, et al. (2003). "AINT/ERIC/TACC: an expanding family of proteins with C-terminal coiled coil domains". Leuk. Lymphoma. 43 (7): 1455–9. doi:10.1080/1042819022386644. PMID12389629.
Maruyama K, Sugano S (1994). "Oligo-capping: a simple method to replace the cap structure of eukaryotic mRNAs with oligoribonucleotides". Gene. 138 (1–2): 171–4. doi:10.1016/0378-1119(94)90802-8. PMID8125298.
Suzuki Y, Yoshitomo-Nakagawa K, Maruyama K, et al. (1997). "Construction and characterization of a full length-enriched and a 5'-end-enriched cDNA library". Gene. 200 (1–2): 149–56. doi:10.1016/S0378-1119(97)00411-3. PMID9373149.
Still IH, Vince P, Cowell JK (1999). "The third member of the transforming acidic coiled coil-containing gene family, TACC3, maps in 4p16, close to translocation breakpoints in multiple myeloma, and is upregulated in various cancer cell lines". Genomics. 58 (2): 165–70. doi:10.1006/geno.1999.5829. PMID10366448.
McKeveney PJ, Hodges VM, Mullan RN, et al. (2001). "Characterization and localization of expression of an erythropoietin-induced gene, ERIC-1/TACC3, identified in erythroid precursor cells". Br. J. Haematol. 112 (4): 1016–24. doi:10.1046/j.1365-2141.2001.02644.x. PMID11298601.
Sadek CM, Pelto-Huikko M, Tujague M, et al. (2004). "TACC3 expression is tightly regulated during early differentiation". Gene Expr. Patterns. 3 (2): 203–11. doi:10.1016/S1567-133X(02)00066-2. PMID12711550.
Leonard D, Ajuh P, Lamond AI, Legerski RJ (2003). "hLodestar/HuF2 interacts with CDC5L and is involved in pre-mRNA splicing". Biochem. Biophys. Res. Commun. 308 (4): 793–801. doi:10.1016/S0006-291X(03)01486-4. PMID12927788.
Gangisetty O, Lauffart B, Sondarva GV, et al. (2004). "The transforming acidic coiled coil proteins interact with nuclear histone acetyltransferases". Oncogene. 23 (14): 2559–63. doi:10.1038/sj.onc.1207424. PMID14767476.
Beausoleil SA, Villén J, Gerber SA, et al. (2006). "A probability-based approach for high-throughput protein phosphorylation analysis and site localization". Nat. Biotechnol. 24 (10): 1285–92. doi:10.1038/nbt1240. PMID16964243.