- Balakrishnan, A.; Cramer, S.; Bandyopadhyay, G. K., et al. Differential proliferative response to linoleate in cultures of epithelial cells from normal human breast and fibroadenomas. Cancer Res. 49:857–862; 1989.
PubMed CAS Google Scholar
- Band, V.; Sager, R. Distinctive traits of normal and tumor-derived human mammary epithelial cells expressed in a medium that supports long-term growth of both cell types. Proc. Natl. Acad. Sci. USA 86:1249–1253; 1989.
Article PubMed CAS Google Scholar
- Band, V.; Zajchowski, D.; Kulesa, V., et al. Human papilloma virus DNAs immortalize normal human mammary epithelial cells and reduce their growth factor requirements. Proc. Natl. Acad. Sci. USA 87:463–467; 1990.
Article PubMed CAS Google Scholar
- Bartek, J.; Bartkova, J.; Kyprianou, N., et al. Efficient immortalization of luminal epithelial cells from human mammary gland by introduction of simian virus 40 large tumor antigen with a recombinant retrovirus. Proc. Natl. Acad. Sci. USA 88:3520–3524; 1991.
Article PubMed CAS Google Scholar
- Bartek, J.; Bartkova, J.; Lalani, E.-N., et al. Selective immortalization of a phenotypically distinct epithelial cell type by microinjection of SV40 DNA into cultured human milk cells. Int. J. Cancer 45:1105–1112; 1990.
Article PubMed CAS Google Scholar
- Berthon, P.; Goubin, G.; Dutrillaux, B., et al. Single-step transformation of human breast epithelial cells by SV40 large T oncogene. Int. J. Cancer 52:92–97; 1992.
Article PubMed CAS Google Scholar
- Boyce, S. T.; Ham, R. G. Calcium-regulated differentiation of normal human epidermal keratinocytes in chemically defined clonal culture and serum-free serial culture. J. Invest. Dermatol. 81:33S-40S; 1983.
Article PubMed CAS Google Scholar
- Buehring, G. C. Culture of human mammary epithelial cells: keeping abreast of a new method. J. Natl. Cancer Inst. 49:1433–1434; 1972.
PubMed CAS Google Scholar
- Chang, C. C.; Boezi, J. A.; Warren, S. T., et al. Isolation and characterization of a UV-sensitive hypermutable aphidicolin-resistant Chinese hamster cell line. Somatic Cell Genet. 7:235–253; 1981.
Article PubMed CAS Google Scholar
- Chang, S. E.; Keen, J.; Lane, E. B., et al. Establishment and characterization of SV40-transformed human breast epithelial cell lines. Cancer Res. 42:2040–2053; 1982.
PubMed CAS Google Scholar
- Chu, E. H. Y.; Sun, N. C.; Chang, C. C. Induction of auxotrophic mutations by treatment of Chinese hamster cells with 5-bromodeoxyuridine and black light. Proc. Natl. Acad. Sci. USA 69:3459–3463; 1972.
Article PubMed CAS Google Scholar
- Dotto, G. P.; Moellmann, G.; Ghosh, S., et al. Transformation of murine melanocytes by basic fibroblast growth factor cDNA and oncogenes and selective suppression of the transformed phenotype in a reconstituted cutaneous environment. J. Cell Biol. 109:3115–3128; 1989.
Article PubMed CAS Google Scholar
- Emerman, J. T.; Wilkinson, D. A. Routine culturing of normal, dysplastic and malignant human mammary epithelial cells from small tissue samples. In Vitro Cell. Dev. Biol. 26:1186–1194; 1990.
Article PubMed CAS Google Scholar
- Engel, L. W.; Young, N. A. Human breast carcinoma cells in continuous culture: a review. Cancer Res. 38:4327–4339; 1978.
PubMed CAS Google Scholar
- Ethier, S. P.; Summerfelt, R. M.; Cundiff, K. C., et al. The influence of growth factors on the proliferative potential of normal and primary breast cancer-derived human breast epithelial cells. Breast Cancer Res. Treat. 17:221–230; 1990.
Article Google Scholar
- Garcia, I.; Brandt, D.; Weintraub, J., et al. Loss of heterozygosity for the short arm of chromosome 11(11p15) in human milk epithelial cells immortalized by microinjection of SV40 DNA. Cancer Res. 51:294–300; 1991.
PubMed CAS Google Scholar
- Hammond, S. L.; Ham, R. G.; Stampfer, M. R. Serum-free growth of human mammary epithelial cells: rapid clonal growth in defined medium and extended serial passage with pituitary extract. Proc. Natl. Acad. Sci. USA 81:5435–5439; 1984.
Article PubMed CAS Google Scholar
- Kao, C. Y.; Nomata, K.; Oakley, C. S., et al. Two types of normal human breast epithelial cells derived from reduction mammoplasty: phenotypic characterization and response to SV40 transfection. Carcinogenesis 16:531–538; 1995.
Article PubMed CAS Google Scholar
- Koukoulis, G. K.; Virtanen, I.; Korhonen, M., et al. Immunohistochemical localization of integrins in the normal, hyperplastic, and neoplastic breast. Am. J. Pathol. 139:787–799; 1991.
PubMed CAS Google Scholar
- Li, I. C.; Chang, C. C.; Trosko, J. E. Thymidylate synthetase gene as a quantitative mutation marker in Chinese hamster cells. Mutat. Res. 243:233–239; 1990.
Article PubMed CAS Google Scholar
- O’Hare, M. J.; Ormerod, M. G.; Monaghan, P., et al. Characterization in vitro of luminal and myoepithelial cells isolated from the human mammary gland by cell sorting. Differentiation 46:209–221; 1991.
Article PubMed CAS Google Scholar
- Petersen, O. W.; Deurs, B. Growth factor control of myoepithelial-cell differentiation in cultures of human mammary gland. Differentiation 39:197–215; 1988.
Article PubMed CAS Google Scholar
- Pittelkow, M. R.; Scott, R. E. New techniques for the in vitro culture of human skin keratinocytes and perspectdives on their use for grafting of patients with extensive burns. Mayo Clin. Proc. 61:771–777; 1986.
PubMed CAS Google Scholar
- Rudland, P. S.; Ollerhead, G.; Barraclough, R. Isolation of simian virus 40-transformed human mammary epithelial stem cell lines that can differentiate to myoepithelial-like cells in culture and in vivo. Dev. Biol. 136:167–180; 1989.
Article PubMed CAS Google Scholar
- Shay, J. W.; Van Der Haegen, B. A.; Ying, Y., et al. The frequency of immortalization of human fibroblasts and mammary epithelial cells transfected with SV40 large T-antigen. Exp. Cell Res. 209:45–52; 1993.
Article PubMed CAS Google Scholar
- Smith, H. S.; Wolman, S. R.; Dairkee, S. H., et al. Immortalization in culture: occurrence at a late stage in the progression of breast cancer. J. Natl. Cancer Inst. 78:611–615; 1987.
PubMed CAS Google Scholar
- Soule, H. D.; Vazquez, J.; Long, A., et al. A human cell line from a pleural effusion derived from a breast carcinoma. J. Natl. Cancer Inst. 51:1409–1416; 1973.
PubMed CAS Google Scholar
- Stampfer, M.; Hallowes, R. C.; Hackett, A. J. Growth of normal human mammary cells in culture. In Vitro 16(5):415–425; 1980.
Article PubMed CAS Google Scholar
- Stocking, C.; Kollek, R.; Bergholz, U., et al. Long terminal repeat sequences impart hematopoietic transformation properties to the myeloproliferative sarcoma virus. Proc. Natl. Acad. Sci. USA 82:5746–5750; 1985.
Article PubMed CAS Google Scholar
- Taylor-Papadimitriou, J.; Shearer, M.; Tilly, R. Some properties of cells cultured from early-lactation human milk. J. Natl. Cancer Inst. 58:1563–1571; 1977.
PubMed CAS Google Scholar
- Taylor-Papadiminiou, J.; Stampfer, M.; Bartek, J., et al. Keratin expression in human mammary epithelial cells cultured from normal and malignant tissue: relation to in vivo phenotypes and influence of medium. J. Cell Sci. 94:403–413; 1989.
Google Scholar
- Trask, D. K.; Band, V.; Zajchowski, D. A., et al. Keratins as markers that distinguish normal and tumor-derived mammary epithelial cells. Proc. Natl. Acad. Sci. USA 87:2319–2323; 1990.
Article PubMed CAS Google Scholar
- Van Der Haegen, B. A.; Shay, J. W. Immortalization of human mammary epithelial cells by SV40 large T-antigen involves a two step mechanism. In Vitro Cell. Dev. Biol. 29A:180–182; 1993.
Article PubMed Google Scholar