Development of mouse mammary gland: identification of stages in differentiation of luminal and myoepithelial cells using monoclonal antibodies and polyvalent antiserum against keratinA Sonnenberg, H Daams, MA Van der Valk, J Hilkens and J Hilgers
The development of the mouse mammary gland was studied immunohistochemically using monoclonal antibodies against cell surface and basement membrane proteins and a polyclonal antibody against keratin. We have identified three basic cell types: basal, myoepithelial, and epithelial cells. The epithelial cells can be subdivided into three immunologically related cell types: luminal type I, luminal type II, and alveolar cells. These five cell types appear at different stages of mammary gland development and have either acquired or lost one of the antibody-defined antigens. The cytoplasmic distribution of several of these antigens varied according to the location of the cells within the mammary gland. Epithelial cells which did not line the lumen expressed antigens throughout the cytoplasm. These antigens were demonstrated on the apical site in situations where the cells lined the lumen. One antigen became increasingly basolateral as the cells became attached to the basement membrane. The basal cells synthesize laminin and deposit it at the cell base. They are present in endbuds and ducts and are probably the stem cells of the mammary gland. Transitional forms have been demonstrated which developmentally link these cells with both myoepithelial and (luminal) epithelial cells.
Volume 34,
Issue 8,
pp. 1037-1046,
08/01/1986
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R. Villadsen, A. J. Fridriksdottir, L. Ronnov-Jessen, T. Gudjonsson, F. Rank, M. A. LaBarge, M. J. Bissell, and O. W. Petersen Evidence for a stem cell hierarchy in the adult human breast J. Cell Biol., April 9, 2007; 177(1): 87 - 101. [Abstract] [Full Text] [PDF] |
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F. Bajanca, M. Luz, K. Raymond, G. G. Martins, A. Sonnenberg, S. Tajbakhsh, M. Buckingham, and S. Thorsteinsdottir Integrin {alpha}6{beta}1-laminin interactions regulate early myotome formation in the mouse embryo Development, May 1, 2006; 133(9): 1635 - 1644. [Abstract] [Full Text] [PDF] |
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I. Mikaelian, M. Hovick, K. A. Silva, L. M. Burzenski, L. D. Shultz, C. L. Ackert-Bicknell, G. A. Cox, and J. P. Sundberg Expression of Terminal Differentiation Proteins Defines Stages of Mouse Mammary Gland Development Vet. Pathol., January 1, 2006; 43(1): 36 - 49. [Abstract] [Full Text] [PDF] |
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K. Raymond, M. Kreft, H. Janssen, J. Calafat, and A. Sonnenberg Keratinocytes display normal proliferation, survival and differentiation in conditional {beta}4-integrin knockout mice J. Cell Sci., March 1, 2005; 118(5): 1045 - 1060. [Abstract] [Full Text] [PDF] |
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A. R. Morris, J. Drawbridge, and M. S. Steinberg Axolotl pronephric duct migration requires an epidermally derived, laminin 1-containing extracellular matrix and the integrin receptor {alpha}6{beta}1 Development, December 1, 2003; 130(23): 5601 - 5608. [Abstract] [Full Text] [PDF] |
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M.-A. Deugnier, M. M. Faraldo, B. Janji, P. Rousselle, J. P. Thiery, and M. A. Glukhova EGF controls the in vivo developmental potential of a mammary epithelial cell line possessing progenitor properties J. Cell Biol., November 7, 2002; 159(3): 453 - 463. [Abstract] [Full Text] [PDF] |
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L Hebbard, A Steffen, V Zawadzki, C Fieber, N Howells, J Moll, H Ponta, M Hofmann, and J Sleeman CD44 expression and regulation during mammary gland development and function J. Cell Sci., January 7, 2000; 113(14): 2619 - 2630. [Abstract] [PDF] |
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M. J. Smalley, J. Titley, H. Paterson, N. Perusinghe, C. Clarke, and M. J. O'Hare Differentiation of Separated Mouse Mammary Luminal Epithelial and Myoepithelial Cells Cultured on EHS Matrix Analyzed by Indirect Immunofluorescence of Cytoskeletal Antigens J. Histochem. Cytochem., December 1, 1999; 47(12): 1513 - 1524. [Abstract] [Full Text] |
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K. Maaser, K. Wolf, C. E. Klein, B. Niggemann, K. S. Zänker, E.-B. Bröcker, and P. Friedl Functional Hierarchy of Simultaneously Expressed Adhesion Receptors: Integrin alpha 2beta 1 but Not CD44 Mediates MV3 Melanoma Cell Migration and Matrix Reorganization within Three-dimensional Hyaluronan-containing Collagen Matrices Mol. Biol. Cell, October 1, 1999; 10(10): 3067 - 3079. [Abstract] [Full Text] |
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M. Vivinus-Nebot, M. Ticchioni, F. Mary, P. Hofman, V. Quaranta, P. Rousselle, and A. Bernard Laminin 5 in the Human Thymus: Control of T Cell Proliferation via alpha 6beta 4 Integrins J. Cell Biol., February 8, 1999; 144(3): 563 - 574. [Abstract] [Full Text] [PDF] |
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M. Deugnier, M. Faraldo, P Rousselle, J. Thiery, and M. Glukhova Cell-extracellular matrix interactions and EGF are important regulators of the basal mammary epithelial cell phenotype J. Cell Sci., January 4, 1999; 112(7): 1035 - 1044. [Abstract] [PDF] |
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Z Nikolova, V Djonov, G Zuercher, A. Andres, and A Ziemiecki Cell-type specific and estrogen dependent expression of the receptor tyrosine kinase EphB4 and its ligand ephrin-B2 during mammary gland morphogenesis J. Cell Sci., January 9, 1998; 111(18): 2741 - 2751. [Abstract] [PDF] |
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H. Fujiwara, T. Honda, M. Ueda, K. Nakamura, S. Yamada, M. Maeda, and T. Mori Laminin Suppresses Progesterone Production by Human Luteinizing Granulosa Cells via Interaction with Integrin {alpha}6{beta}1 J. Clin. Endocrinol. Metab., July 1, 1997; 82(7): 2122 - 2128. [Abstract] [Full Text] [PDF] |
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L. Borradori, P. J. Koch, C. M. Niessen, S. Erkeland, M. R. v. Leusden, and A. Sonnenberg The Localization of Bullous Pemphigoid Antigen 180 (BP180) in Hemidesmosomes Is Mediated by Its Cytoplasmic Domain and Seems to be Regulated by the beta 4 Integrin Subunit J. Cell Biol., March 24, 1997; 136(6): 1333 - 1347. [Abstract] [Full Text] [PDF] |
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C. Niessen, E. Hulsman, L. Oomen, I Kuikman, and A Sonnenberg A minimal region on the integrin beta4 subunit that is critical to its localization in hemidesmosomes regulates the distribution of HD1/plectin in COS-7 cells J. Cell Sci., January 8, 1997; 110(15): 1705 - 1716. [Abstract] [PDF] |
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P Sanchez-Aparicio, A. Martinez de Velasco, C. Niessen, L Borradori, I Kuikman, E. Hulsman, R Fassler, K Owaribe, and A Sonnenberg The subcellular distribution of the high molecular mass protein, HD1, is determined by the cytoplasmic domain of the integrin beta 4 subunit J. Cell Sci., January 1, 1997; 110(2): 169 - 178. [Abstract] [PDF] |
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A. Zhu and F. Watt Expression of a dominant negative cadherin mutant inhibits proliferation and stimulates terminal differentiation of human epidermal keratinocytes J. Cell Sci., January 12, 1996; 109(13): 3013 - 3023. [Abstract] [PDF] |
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C. Damsky, C Librach, K. Lim, M. Fitzgerald, M. McMaster, M Janatpour, Y Zhou, S. Logan, and S. Fisher Integrin switching regulates normal trophoblast invasion Development, January 12, 1994; 120(12): 3657 - 3666. [Abstract] [PDF] |
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F. Watt, M. Kubler, N. Hotchin, L. Nicholson, and J. Adams Regulation of keratinocyte terminal differentiation by integrin-extracellular matrix interactions J. Cell Sci., January 9, 1993; 106(1): 175 - 182. [Abstract] [PDF] |
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J. Adams and J Lawler Diverse mechanisms for cell attachment to platelet thrombospondin J. Cell Sci., January 4, 1993; 104(4): 1061 - 1071. [Abstract] [PDF] |
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