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The FASEB Journal, Vol 4, 1577-1590, Copyright © 1990 by The Federation of American Societies for Experimental Biology
REVIEWS |
PD Yurchenco and JC Schittny
Department of Pathology, Robert Wood Johnson Medical School, Piscataway, New Jersey 08854.
Basement membranes are specialized extracellular matrices with support, sieving, and cell regulatory functions. The molecular architectures of these matrices are created through specific binding interactions between unique glycoprotein and proteoglycan protomers. Type IV collagen chains, using NH2-terminal, COOH-terminal, and lateral association, form a covalently stabilized polygonal framework. Laminin, a four-armed glycoprotein, self-assembles through terminal-domain interactions to form a second polymer network, Entactin/nidogen, a dumbbell-shaped sulfated glycoprotein, binds laminin near its center and interacts with type IV collagen, bridging the two. A large heparan sulfate proteoglycan, important for charge-dependent molecular sieving, is firmly anchored in the basement membrane and can bind itself through a core-protein interaction to form dimers and oligomers and bind laminin and type IV collagen through its glycosaminoglycan chains. Heterogeneity of structure and function occur in different tissues, in development, and in response to different physiological needs. The molecular architecture of these matrices may be regulated during or after primary assembly through variations in compositions, isoform substitutions, and the modifying influence of exogenous macromolecules such as heparin and heparan sulfate.
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M. W. Cohen, C. Jacobson, P. D. Yurchenco, G. E. Morris, and S. Carbonetto Laminin-induced Clustering of Dystroglycan on Embryonic Muscle Cells: Comparison with Agrin-induced Clustering J. Cell Biol., March 10, 1997; 136(5): 1047 - 1058. [Abstract] [Full Text] [PDF] |
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M. L. Fleur, J. L. Underwood, D. A. Rappolee, and Z. Werb Basement Membrane and Repair of Injury to Peripheral Nerve: Defining a Potential Role for Macrophages, Matrix Metalloproteinases, and Tissue Inhibitor of Metalloproteinases-1 J. Exp. Med., December 1, 1996; 184(6): 2311 - 2326. [Abstract] [Full Text] [PDF] |
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L. Gagnoux-Palacios, J. Vailly, M. Durand-Clement, E. Wagner, J.-P. Ortonne, and G. Meneguzzi Functional Re-expression of Laminin-5 in Laminin-gamma 2-deficient Human Keratinocytes Modifies Cell Morphology, Motility, and Adhesion J. Biol. Chem., August 2, 1996; 271(31): 18437 - 18444. [Abstract] [Full Text] [PDF] |
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J. B. Ancsin and R. Kisilevsky Laminin Interactions Important for Basement Membrane Assembly Are Promoted by Zinc and Implicate Laminin Zinc Finger-like Sequences J. Biol. Chem., March 22, 1996; 271(12): 6845 - 6851. [Abstract] [Full Text] [PDF] |
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S. Joseph, M. Ford, C Barth, S Portbury, P. Bartlett, V Nurcombe, and U Greferath A proteoglycan that activates fibroblast growth factors during early neuronal development is a perlecan variant Development, January 11, 1996; 122(11): 3443 - 3452. [Abstract] [PDF] |
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S Colucci, G Giannelli, M Grano, R Faccio, V Quaranta, and A. Zallone Human osteoclast-like cells selectively recognize laminin isoforms, an event that induces migration and activates Ca2+ mediated signals J. Cell Sci., January 6, 1996; 109(6): 1527 - 1535. [Abstract] [PDF] |
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G. F. Hamann, Y. Okada, R. Fitridge, and G. J. del Zoppo Microvascular Basal Lamina Antigens Disappear During Cerebral Ischemia and Reperfusion Stroke, November 1, 1995; 26(11): 2120 - 2126. [Abstract] [Full Text] |
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J. B. West and O. Mathieu-Costello Vulnerability of Pulmonary Capillaries in Heart Disease Circulation, August 1, 1995; 92(3): 622 - 631. [Abstract] [Full Text] |
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F Andre, P Filippi, and H Feracci Merosin is synthesized by thyroid cells in primary culture irrespective of cellular organization J. Cell Sci., January 1, 1994; 107(1): 183 - 193. [Abstract] [PDF] |
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J. Brown, H Wiedemann, and R Timpl Protein binding and cell adhesion properties of two laminin isoforms (AmB1eB2e, AmB1sB2e) from human placenta J. Cell Sci., January 1, 1994; 107(1): 329 - 338. [Abstract] [PDF] |
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A. E. Sutherland, P. G. Calarco, and C. H. Damsky Developmental regulation of integrin expression at the time of implantation in the mouse embryo Development, December 1, 1993; 119(4): 1175 - 1186. [Abstract] [PDF] |
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G Zambruno, P. Marchisio, A Melchiori, S Bondanza, R Cancedda, and M De Luca Expression of integrin receptors and their role in adhesion, spreading and migration of normal human melanocytes J. Cell Sci., January 5, 1993; 105(1): 179 - 190. [Abstract] [PDF] |
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M. Hormia, I. Virtanen, and V. Quaranta Immunolocalization of Integrin {alpha}6{beta}4 in Mouse Junctional Epithelium Suggests an Anchoring Function to both the Internal and the External Basal Lamina Journal of Dental Research, August 1, 1992; 71(8): 1503 - 1508. [Abstract] [PDF] |
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E. C. Lee, H.-J. Woo, C. A. Korzelius, G. D. Steele Jr, and A. M. Mercurio Carbohydrate-Binding Protein 35 Is the Major Cell-Surface Laminin-Binding Protein in Colon Carcinoma Arch Surg, December 1, 1991; 126(12): 1498 - 1502. [Abstract] [PDF] |
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H. Yamaguchi, H. Yamashita, H. Mori, I. Okazaki, M. Nomizu, K. Beck, and Y. Kitagawa High and Low Affinity Heparin-binding Sites in the G Domain of the Mouse Laminin alpha 4 Chain J. Biol. Chem., September 15, 2000; 275(38): 29458 - 29465. [Abstract] [Full Text] [PDF] |
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M. Mongiat, J. Otto, R. Oldershaw, F. Ferrer, J. D. Sato, and R. V. Iozzo Fibroblast Growth Factor-binding Protein Is a Novel Partner for Perlecan Protein Core J. Biol. Chem., March 23, 2001; 276(13): 10263 - 10271. [Abstract] [Full Text] [PDF] |
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