Publications | PubMed=7214336 Rheinwald J.G., Beckett M.A. Tumorigenic keratinocyte lines requiring anchorage and fibroblast support cultured from human squamous cell carcinomas. Cancer Res. 41:1657-1663(1981) PubMed=6722007; DOI=10.1038/bjc.1984.94; PMCID=PMC1976725 Weichselbaum R.R., Dahlberg W.K., Little J.B., Ervin T.J., Miller D., Hellman S., Rheinwald J.G. Cellular X-ray repair parameters of early passage squamous cell carcinoma lines derived from patients with known responses to radiotherapy. Br. J. Cancer 49:595-601(1984) PubMed=3458227; DOI=10.1073/pnas.83.8.2684; PMCID=PMC323364 Weichselbaum R.R., Dahlberg W.K., Beckett M.A., Karrison T., Miller D., Clark J., Ervin T.J. Radiation-resistant and repair-proficient human tumor cells may be associated with radiotherapy failure in head- and neck-cancer patients. Proc. Natl. Acad. Sci. U.S.A. 83:2684-2688(1986) PubMed=3417487; DOI=10.1016/0360-3016(88)90297-0 Weichselbaum R.R., Beckett M.A., Schwartz J.L., Dritschilo A. Radioresistant tumor cells are present in head and neck carcinomas that recur after radiotherapy. Int. J. Radiat. Oncol. Biol. Phys. 15:575-579(1988) PubMed=2573646; DOI=10.1080/09553008914551731 Weichselbaum R.R., Rotmensch J., Ahmed-Swan S., Beckett M.A. Radiobiological characterization of 53 human tumor cell lines. Int. J. Radiat. Biol. 56:553-560(1989) PubMed=8390283; DOI=10.1038/bjc.1993.238; PMCID=PMC1968513 Burns J.E., Baird M.C., Clark L.J., Burns P.A., Edington K.G., Chapman C., Mitchell R., Robertson G., Soutar D., Parkinson E.K. Gene mutations and increased levels of p53 protein in human squamous cell carcinomas and their cell lines. Br. J. Cancer 67:1274-1284(1993) DOI=10.1016/B978-0-12-333530-2.50007-1 Carey T.E. Head and neck tumor cell lines. (In book chapter) Atlas of human tumor cell lines; Hay R.J., Park J.-G., Gazdar A.F. (eds.); pp.79-120; Academic Press; New York; USA (1994) PubMed=11992403; DOI=10.1002/ijc.10321 Popp S., Waltering S., Herbst C., Moll I., Boukamp P. UV-B-type mutations and chromosomal imbalances indicate common pathways for the development of Merkel and skin squamous cell carcinomas. Int. J. Cancer 99:352-360(2002) PubMed=17312569; DOI=10.1002/hed.20478 Lin C.J., Grandis J.R., Carey T.E., Gollin S.M., Whiteside T.L., Koch W.M., Ferris R.L., Lai S.Y. Head and neck squamous cell carcinoma cell lines: established models and rationale for selection. Head Neck 29:163-188(2007) PubMed=22546478; DOI=10.1016/j.ajpath.2012.02.028; PMCID=PMC3378915 Degen M., Natarajan E., Barron P., Widlund H.R., Rheinwald J.G. MAPK/ERK-dependent translation factor hyperactivation and dysregulated laminin gamma2 expression in oral dysplasia and squamous cell carcinoma. Am. J. Pathol. 180:2462-2478(2012) PubMed=22564525; DOI=10.1158/0008-5472.CAN-12-0423; PMCID=PMC3428932 Goldie S.J., Mulder K.W., Tan D.W.-M., Lyons S.K., Sims A.H., Watt F.M. FRMD4A upregulation in human squamous cell carcinoma promotes tumor growth and metastasis and is associated with poor prognosis. Cancer Res. 72:3424-3436(2012) PubMed=34435183; DOI=10.1016/j.mbplus.2021.100066; PMCID=PMC8377039 Vu B., Souza G.R., Dengjel J. Scaffold-free 3D cell culture of primary skin fibroblasts induces profound changes of the matrisome. Matrix Biol. Plus 11:100066.1-100066.9(2021) PubMed=34593609; DOI=10.1158/1541-7786.MCR-21-0306; PMCID=PMC10088464 Chen X., Adhikary G., Shrestha S., Xu W., Keillor J.W., Naselsky W., Eckert R.L. Transglutaminase 2 maintains hepatocyte growth factor signaling to enhance the cancer cell phenotype. Mol. Cancer Res. 19:2026-2035(2021) |