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    Results: 1 to 20 of 265

    1.

    Novel multicellular organotypic models of normal and malignant breast: tools for dissecting the role of the microenvironment in breast cancer progression.

    Holliday DL, Brouilette KT, Markert A, Gordon LA, Jones JL.

    Breast Cancer Res. 2009;11(1):R3. Epub 2009 Jan 19.

    PMID:
    19152687
    [PubMed - indexed for MEDLINE]
    Free PMC Article
    3.

    The microenvironment determines the breast cancer cells' phenotype: organization of MCF7 cells in 3D cultures.

    Krause S, Maffini MV, Soto AM, Sonnenschein C.

    BMC Cancer. 2010 Jun 7;10:263.

    PMID:
    20529269
    [PubMed - indexed for MEDLINE]
    Free PMC Article
    4.

    Myoepithelial molecular markers in human breast carcinoma PMC42-LA cells are induced by extracellular matrix and stromal cells.

    Lebret SC, Newgreen DF, Waltham MC, Price JT, Thompson EW, Ackland ML.

    In Vitro Cell Dev Biol Anim. 2006 Nov-Dec;42(10):298-307.

    PMID:
    17316063
    [PubMed - indexed for MEDLINE]
    5.

    Fibroblast hepatocyte growth factor promotes invasion of human mammary ductal carcinoma in situ.

    Jedeszko C, Victor BC, Podgorski I, Sloane BF.

    Cancer Res. 2009 Dec 1;69(23):9148-55. Epub 2009 Nov 17.

    PMID:
    19920187
    [PubMed - indexed for MEDLINE]
    Free PMC Article
    6.

    Normal and tumor-derived myoepithelial cells differ in their ability to interact with luminal breast epithelial cells for polarity and basement membrane deposition.

    Gudjonsson T, Rønnov-Jessen L, Villadsen R, Rank F, Bissell MJ, Petersen OW.

    J Cell Sci. 2002 Jan 1;115(Pt 1):39-50.

    PMID:
    11801722
    [PubMed - indexed for MEDLINE]
    Free PMC Article
    8.

    Chronic exposure to fulvestrant promotes overexpression of the c-Met receptor in breast cancer cells: implications for tumour-stroma interactions.

    Hiscox S, Jordan NJ, Jiang W, Harper M, McClelland R, Smith C, Nicholson RI.

    Endocr Relat Cancer. 2006 Dec;13(4):1085-99.

    PMID:
    17158755
    [PubMed - indexed for MEDLINE]
    Free Article
    9.

    Effect of stromal and epithelial cells derived from normal and tumorous breast tissue on the proliferation of human breast cancer cell lines in co-culture.

    Dong-Le Bourhis X, Berthois Y, Millot G, Degeorges A, Sylvi M, Martin PM, Calvo F.

    Int J Cancer. 1997 Mar 28;71(1):42-8.

    PMID:
    9096664
    [PubMed - indexed for MEDLINE]
    10.

    Breast cancer subtype-specific interactions with the microenvironment dictate mechanisms of invasion.

    Dang TT, Prechtl AM, Pearson GW.

    Cancer Res. 2011 Nov 1;71(21):6857-66. Epub 2011 Sep 9.

    PMID:
    21908556
    [PubMed - indexed for MEDLINE]
    11.

    Tumour-associated tenascin-C isoforms promote breast cancer cell invasion and growth by matrix metalloproteinase-dependent and independent mechanisms.

    Hancox RA, Allen MD, Holliday DL, Edwards DR, Pennington CJ, Guttery DS, Shaw JA, Walker RA, Pringle JH, Jones JL.

    Breast Cancer Res. 2009;11(2):R24. Epub 2009 Apr 30.

    PMID:
    19405959
    [PubMed - indexed for MEDLINE]
    Free PMC Article
    12.
    13.

    Aging of stromal-derived human breast fibroblasts might contribute to breast cancer progression.

    Martens JW, Sieuwerts AM, Bolt-deVries J, Bosma PT, Swiggers SJ, Klijn JG, Foekens JA.

    Thromb Haemost. 2003 Feb;89(2):393-404.

    PMID:
    12574821
    [PubMed - indexed for MEDLINE]
    14.

    Large expansion of morphologically heterogeneous mammary epithelial cells, including the luminal phenotype, from human breast tumours.

    Krásná L, Dudorkinová D, Vedralová J, Veselý P, Pokorná E, Kudlácková I, Chaloupková A, Petruzelka L, Danes J, Matousková E.

    Breast Cancer Res Treat. 2002 Feb;71(3):219-35.

    PMID:
    12002341
    [PubMed - indexed for MEDLINE]
    15.

    Human mammary fibroblasts stimulate invasion of breast cancer cells in a three-dimensional culture and increase stroma development in mouse xenografts.

    Olsen CJ, Moreira J, Lukanidin EM, Ambartsumian NS.

    BMC Cancer. 2010 Aug 19;10:444.

    PMID:
    20723242
    [PubMed - indexed for MEDLINE]
    Free PMC Article
    16.

    Cellular mechanisms for low-dose ionizing radiation-induced perturbation of the breast tissue microenvironment.

    Tsai KK, Chuang EY, Little JB, Yuan ZM.

    Cancer Res. 2005 Aug 1;65(15):6734-44.

    PMID:
    16061655
    [PubMed - indexed for MEDLINE]
    Free Article
    17.

    Tumor-stromal cell interaction under hypoxia increases the invasiveness of pancreatic cancer cells through the hepatocyte growth factor/c-Met pathway.

    Ide T, Kitajima Y, Miyoshi A, Ohtsuka T, Mitsuno M, Ohtaka K, Koga Y, Miyazaki K.

    Int J Cancer. 2006 Dec 15;119(12):2750-9.

    PMID:
    16998831
    [PubMed - indexed for MEDLINE]
    18.

    Role of COX-2 in epithelial-stromal cell interactions and progression of ductal carcinoma in situ of the breast.

    Hu M, Peluffo G, Chen H, Gelman R, Schnitt S, Polyak K.

    Proc Natl Acad Sci U S A. 2009 Mar 3;106(9):3372-7. Epub 2009 Feb 13.

    PMID:
    19218449
    [PubMed - indexed for MEDLINE]
    Free PMC Article
    19.

    Breast cell invasive potential relates to the myoepithelial phenotype.

    Gordon LA, Mulligan KT, Maxwell-Jones H, Adams M, Walker RA, Jones JL.

    Int J Cancer. 2003 Aug 10;106(1):8-16.

    PMID:
    12794751
    [PubMed - indexed for MEDLINE]
    20.

    Breast stroma plays a dominant regulatory role in breast epithelial growth and differentiation: implications for tumor development and progression.

    Shekhar MP, Werdell J, Santner SJ, Pauley RJ, Tait L.

    Cancer Res. 2001 Feb 15;61(4):1320-6.

    PMID:
    11245428
    [PubMed - indexed for MEDLINE]
    Free Article

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