Tissue architecture and function: dynamic reciprocity via extra- and intra-cellular matrices
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[1] M J Bissell,et al. Tissue phenotype depends on reciprocal interactions between the extracellular matrix and the structural organization of the nucleus. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[2] Juliet A. Ellis,et al. Nesprins: a novel family of spectrin-repeat-containing proteins that localize to the nuclear membrane in multiple tissues. , 2001, Journal of cell science.
[3] N. Ben-Jonathan,et al. Extrapituitary prolactin: distribution, regulation, functions, and clinical aspects. , 1996, Endocrine reviews.
[4] C. Q. Lin,et al. Extracellular matrix regulates whey acidic protein gene expression by suppression of TGF-alpha in mouse mammary epithelial cells: studies in culture and in transgenic mice , 1995, The Journal of cell biology.
[5] L. Liotta,et al. Effects of inhibition of basement membrane collagen deposition on rat mammary gland development. , 1980, Developmental biology.
[6] C. Streuli,et al. A role for the cytoskeleton in prolactin-dependent mammary epithelial cell differentiation , 2004, Journal of Cell Science.
[7] Viola Vogel,et al. Fibronectin extension and unfolding within cell matrix fibrils controlled by cytoskeletal tension , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[8] M. Bissell,et al. A novel transcriptional enhancer is involved in the prolactin- and extracellular matrix-dependent regulation of beta-casein gene expression. , 1992, Molecular biology of the cell.
[9] Alan Hall,et al. Rho GTPases: biochemistry and biology. , 2005, Annual review of cell and developmental biology.
[10] C. S. Chen,et al. Demonstration of mechanical connections between integrins, cytoskeletal filaments, and nucleoplasm that stabilize nuclear structure. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[11] Mina J Bissell,et al. Higher-order nuclear organization in growth arrest of human mammary epithelial cells: a novel role for telomere-associated protein TIN2 , 2004, Journal of Cell Science.
[12] Heike Brand,et al. Estrogen Receptor-α Directs Ordered, Cyclical, and Combinatorial Recruitment of Cofactors on a Natural Target Promoter , 2003, Cell.
[13] M. Gardel,et al. CD98hc (SLC3A2) participates in fibronectin matrix assembly by mediating integrin signaling , 2007, The Journal of cell biology.
[14] S. Haslam,et al. Fibronectin and the alpha(5)beta(1) integrin are under developmental and ovarian steroid regulation in the normal mouse mammary gland. , 2001, Endocrinology.
[15] Radhika Desai,et al. ROCK-generated contractility regulates breast epithelial cell differentiation in response to the physical properties of a three-dimensional collagen matrix , 2003, The Journal of cell biology.
[16] D. Albertson,et al. Rac1b and reactive oxygen species mediate MMP-3-induced EMT and genomic instability , 2005, Nature.
[17] P. Schedin,et al. Mammary ECM composition and function are altered by reproductive state , 2004, Molecular carcinogenesis.
[18] M. Hetzer,et al. Pushing the envelope: structure, function, and dynamics of the nuclear periphery. , 2005, Annual review of cell and developmental biology.
[19] Jordi Alcaraz,et al. Laminin and biomimetic extracellular elasticity enhance functional differentiation in mammary epithelia , 2008, The EMBO journal.
[20] M. Bissell,et al. Division of labor among the alpha6beta4 integrin, beta1 integrins, and an E3 laminin receptor to signal morphogenesis and beta-casein expression in mammary epithelial cells. , 2011, Molecular biology of the cell.
[21] D. Radisky,et al. Mechanisms of Disease: epithelial–mesenchymal transition—does cellular plasticity fuel neoplastic progression? , 2008, Nature Clinical Practice Oncology.
[22] I. Mian,et al. Tissue architecture: the ultimate regulator of breast epithelial function. , 2003, Current opinion in cell biology.
[23] J. Thiery,et al. β1 Integrin deletion from the basal compartment of the mammary epithelium affects stem cells , 2008, Nature Cell Biology.
[24] B. LaFleur,et al. Keratinocyte expression of MMP3 enhances differentiation and prevents tumor establishment. , 2008, The American journal of pathology.
[25] N. Hynes,et al. Ablation of β1 integrin in mammary epithelium reveals a key role for integrin in glandular morphogenesis and differentiation , 2005, The Journal of cell biology.
[26] M J Bissell,et al. Extracellular matrix-dependent tissue-specific gene expression in mammary epithelial cells requires both physical and biochemical signal transduction. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[27] HighWire Press. Philosophical Transactions of the Royal Society of London , 1781, The London Medical Journal.
[28] W. Nelson,et al. Effects of Regulated Expression of Mutant RhoA and Rac1 Small GTPases on the Development of Epithelial (MDCK) Cell Polarity , 1998, The Journal of cell biology.
[29] S. Haslam,et al. Fibronectin and the α5β1 Integrin Are Under Developmental and Ovarian Steroid Regulation in the Normal Mouse Mammary Gland. , 2001, Endocrinology.
[30] Mina J Bissell,et al. Normal and tumor-derived myoepithelial cells differ in their ability to interact with luminal breast epithelial cells for polarity and basement membrane deposition. , 2010, Journal of cell science.
[31] Jack P. Witty,et al. Matrix metalloproteinases are expressed during ductal and alveolar mammary morphogenesis, and misregulation of stromelysin-1 in transgenic mice induces unscheduled alveolar development. , 1995, Molecular biology of the cell.
[32] M J Bissell,et al. Influence of a reconstituted basement membrane and its components on casein gene expression and secretion in mouse mammary epithelial cells. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[33] C. Munaut,et al. Distinct pathways in the over-expression of matrix metalloproteinases in human fibroblasts by relaxation of mechanical tension. , 2001, Matrix biology : journal of the International Society for Matrix Biology.
[34] M. Bissell,et al. Modulation of secreted proteins of mouse mammary epithelial cells by the collagenous substrata , 1984, The Journal of cell biology.
[35] Mina J Bissell,et al. Extracellular Matrix-regulated Gene Expression Requires Cooperation of SWI/SNF and Transcription Factors* , 2006, Journal of Biological Chemistry.
[36] D. E. Discher,et al. Matrix elasticity directs stem cell lineage — Soluble factors that limit osteogenesis , 2009 .
[37] M J Bissell,et al. How does the extracellular matrix direct gene expression? , 1982, Journal of theoretical biology.
[38] Cynthia A. Reinhart-King,et al. Tensional homeostasis and the malignant phenotype. , 2005, Cancer cell.
[39] L. Suva,et al. Heparan sulfate proteoglycans and heparanase--partners in osteolytic tumor growth and metastasis. , 2004, Matrix biology : journal of the International Society for Matrix Biology.
[40] D. Radisky,et al. Polarity and proliferation are controlled by distinct signaling pathways downstream of PI3-kinase in breast epithelial tumor cells , 2004, The Journal of cell biology.
[41] A. Engler,et al. Fibronectin expression modulates mammary epithelial cell proliferation during acinar differentiation. , 2008, Cancer research.
[42] Sophie Lelièvre,et al. beta4 integrin-dependent formation of polarized three-dimensional architecture confers resistance to apoptosis in normal and malignant mammary epithelium. , 2002, Cancer cell.
[43] M J Bissell,et al. Tissue architecture: the ultimate regulator of epithelial function? , 1998, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[44] M. Bissell,et al. Division of Labor among the α6β4 Integrin, β1 Integrins, and an E3 Laminin Receptor to Signal Morphogenesis and β-Casein Expression in Mammary Epithelial Cells , 1999 .
[45] J. McNally,et al. The glucocorticoid receptor: rapid exchange with regulatory sites in living cells. , 2000, Science.
[46] M J Bissell,et al. Expression of autoactivated stromelysin-1 in mammary glands of transgenic mice leads to a reactive stroma during early development. , 1998, The American journal of pathology.
[47] C H Streuli,et al. Laminin mediates tissue-specific gene expression in mammary epithelia , 1995, The Journal of cell biology.
[48] Richard O Hynes,et al. Integrins Bidirectional, Allosteric Signaling Machines , 2002, Cell.
[49] M. Bissell,et al. Characterization of BCE-1, a Transcriptional Enhancer Regulated by Prolactin and Extracellular Matrix and Modulated by the State of Histone Acetylation , 1998, Molecular and Cellular Biology.
[50] Mina J Bissell,et al. Regulation of mammary gland branching morphogenesis by the extracellular matrix and its remodeling enzymes , 2003, Breast Cancer Research.
[51] Lawrence,et al. A novel regulatory mechanism for whey acidic protein gene expression. , 1989, Cell regulation.
[52] S. Sen,et al. Matrix Elasticity Directs Stem Cell Lineage Specification , 2006, Cell.
[53] S. Santoro,et al. The spatial and temporal expression of the alpha 2 beta 1 integrin and its ligands, collagen I, collagen IV, and laminin, suggest important roles in mouse mammary morphogenesis. , 1995, Differentiation; research in biological diversity.
[54] C. Watson,et al. Stat5 as a Target for Regulation by Extracellular Matrix (*) , 1995, The Journal of Biological Chemistry.
[55] Z. Werb,et al. Role of Rac1 and oxygen radicals in collagenase-1 expression induced by cell shape change. , 1998, Science.
[56] M J Bissell,et al. Microenvironmental Regulators of Tissue Structure and Function Also Regulate Tumor Induction and Progression : The Role of Extracellular Matrix and Its Degrading Enzymes , 2022 .
[57] K. Campbell,et al. Dystroglycan loss disrupts polarity and β-casein induction in mammary epithelial cells by perturbing laminin anchoring , 2006, Journal of Cell Science.
[58] David Botstein,et al. Diversity, topographic differentiation, and positional memory in human fibroblasts , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[59] M. Bissell,et al. Polarity determination in breast tissue: desmosomal adhesion, myoepithelial cells, and laminin 1 , 2003, Breast Cancer Research.
[60] R. Folberg,et al. Tumorigenesis and Neoplastic Progression Epigenetic Reversion of Breast Carcinoma Phenotype Is Accompanied by Changes in DNA Sequestration as Measured by Alu I Restriction Enzyme , 2007 .
[61] M. Bissell,et al. Reprogramming stem cells is a microenvironmental task , 2008, Proceedings of the National Academy of Sciences.
[62] H. Moon,et al. Overexpression of membrane-type matrix metalloproteinase-1 gene induces mammary gland abnormalities and adenocarcinoma in transgenic mice. , 2001, Cancer research.
[63] M. Welsh,et al. Segregation of receptor and ligand regulates activation of epithelial growth factor receptor , 2003, Nature.
[64] Z. Werb,et al. Extracellular Matrix Remodeling during Morphogenesis a , 1998, Annals of the New York Academy of Sciences.
[65] R. McKay,et al. The mammary microenvironment alters the differentiation repertoire of neural stem cells , 2008, Proceedings of the National Academy of Sciences.
[66] E. Turley,et al. Cell-surface and mitotic-spindle RHAMM: moonlighting or dual oncogenic functions? , 2008, Journal of Cell Science.
[67] Z. Werb,et al. The Significance of Matrix Metalloproteinases during Early Stages of Tumor Progression a , 1998, Annals of the New York Academy of Sciences.
[68] V. Quaranta,et al. Proteolytic processing of laminin‐5 by MT1‐MMP in tissues and its effects on epithelial cell morphology , 2004, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[69] Patricia J. Keely,et al. The spatial and temporal expression of the α2β1 integrin and its ligands, collagen I, collagen IV, and laminin, suggest important roles in mouse mammary morphogenesis , 1995 .
[70] D. Pinkel,et al. The Stromal Proteinase MMP3/Stromelysin-1 Promotes Mammary Carcinogenesis , 1999, Cell.
[71] C. Streuli,et al. Rac1 links integrin-mediated adhesion to the control of lactational differentiation in mammary epithelia , 2006, The Journal of cell biology.
[72] C. Daniel,et al. Glycosaminoglycans in the basal lamina and extracellular matrix of the developing mouse mammary duct. , 1982, Developmental biology.
[73] Mina J. Bissell,et al. Biomechanical Approaches for Studying Integration of Tissue Structure and Function in Mammary Epithelia , 2004, Journal of Mammary Gland Biology and Neoplasia.
[74] Mina J. Bissell,et al. Site-specific inductive and inhibitory activities of MMP-2 and MMP-3 orchestrate mammary gland branching morphogenesis , 2003, The Journal of cell biology.
[75] M J Bissell,et al. Functional differentiation and alveolar morphogenesis of primary mammary cultures on reconstituted basement membrane. , 1989, Development.
[76] J. Darnell,et al. Dependence of liver-specific transcription on tissue organization , 1985, Molecular and cellular biology.
[77] C. Streuli,et al. Control of Integrin Expression by Extracellular Matrix (*) , 1995, The Journal of Biological Chemistry.
[78] L. Liotta,et al. Isolation and characterization of type IV procollagen, laminin, and heparan sulfate proteoglycan from the EHS sarcoma. , 1982, Biochemistry.
[79] Kenneth M. Yamada,et al. Cell–matrix adhesion , 2007, Journal of cellular physiology.
[80] V. Quaranta,et al. Membrane-type matrix metalloproteinase-1 (MT1-MMP) is a processing enzyme for human laminin gamma 2 chain. , 2005, The Journal of biological chemistry.
[81] David L. Mack,et al. Interaction with the mammary microenvironment redirects spermatogenic cell fate in vivo , 2007, Proceedings of the National Academy of Sciences.
[82] J. Alcaraz,et al. Cell shape regulates global histone acetylation in human mammary epithelial cells. , 2007, Experimental cell research.
[83] W. Wadsworth,et al. Assembly and tissue functions of early embryonic laminins and netrins. , 2004, Current opinion in cell biology.
[84] Mina J. Bissell,et al. Sustained activation of STAT5 is essential for chromatin remodeling and maintenance of mammary-specific function , 2009, The Journal of cell biology.
[85] Z. Werb,et al. Proteinases of the mammary gland: developmental regulation in vivo and vectorial secretion in culture. , 1991, Development.
[86] Z. Werb,et al. Targeted expression of stromelysin-1 in mammary gland provides evidence for a role of proteinases in branching morphogenesis and the requirement for an intact basement membrane for tissue-specific gene expression [published erratum appears in J Cell Biol 1996 Feb;132(4):following 752] , 1994, The Journal of cell biology.
[87] J. Emerman,et al. Maintenance and induction of morphological differentiation in dissociated mammary epithelium on floating collagen membranes , 1977, In Vitro.
[88] M. Bissell,et al. Control of mammary epithelial differentiation: basement membrane induces tissue-specific gene expression in the absence of cell-cell interaction and morphological polarity , 1991, The Journal of cell biology.
[89] M. Bissell,et al. Of extracellular matrix, scaffolds, and signaling: tissue architecture regulates development, homeostasis, and cancer. , 2006, Annual review of cell and developmental biology.
[90] Z. Werb,et al. Coordinated expression of extracellular matrix-degrading proteinases and their inhibitors regulates mammary epithelial function during involution , 1992, The Journal of cell biology.