Extraction of extendable beaded structures and their identification as fibrillin-containing extracellular matrix microfibrilsDR Keene, BK Maddox, HJ Kuo, LY Sakai and RW Glanville Shriners Hospital for Crippled Children, Portland, Oregon 97201. High molecular weight aggregates were extracted from human amnion using buffers containing 6 M guanidine hydrochloride. Rotary shadowed preparations and negatively stained samples examined by electron microscopy showed that each aggregate appeared to be a string of globular structures joined by fine filaments, giving the appearance of beads on a string. The periodicity of the beads was variable. A mouse monoclonal antibody directed against a previously characterized pepsin fragment of fibrillin was used with gold-conjugated secondary antibody and immunoelectron microscopy to show that the aggregates contained fibrillin. Similar structures were found in non-denaturing homogenates of skin, tongue, ligament, ciliary zonule, cartilage, and vitreous humor. When immunogold-labeled beaded structures were prepared for electron microscopy in the same manner as tissue, the beaded structures could no longer be seen. Instead, gold-labeled microfibrils were found which appeared to be the same as the fibrillin-containing matrix microfibrils observed in connective tissues and often associated with elastin. Thus, standard TEM protocols including fixation, dehydration, and embedding alter the ultrastructural appearance of microfibrils as compared with negative stain or rotary shadowing techniques. When skin was stretched and prepared for electron microscopy while still under tension, beaded filaments were seen in the tissue sections, but were not visible in non-stretched controls. In addition, when stretched ligament was immunolabeled with antibody directed against fibrillin while still under tension, the periodicity of antibodies along the microfibrils increased compared with non-stretched controls. We propose that microfibrils contain globular structures connected by fine filaments composed at lease in part of highly ordered, periodically distributed fibrillin molecules, whose periodicity is subject to change dependent on the tensional forces applied to the tissue in which they are contained.
Volume 39,
Issue 4,
pp. 441-449,
04/01/1991
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D. Hubmacher, E. I. El-Hallous, V. Nelea, M. T. Kaartinen, E. R. Lee, and D. P. Reinhardt Biogenesis of extracellular microfibrils: Multimerization of the fibrillin-1 C terminus into bead-like structures enables self-assembly PNAS, May 6, 2008; 105(18): 6548 - 6553. [Abstract] [Full Text] [PDF] |
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C.-L. Kuo, Z. Isogai, D. R. Keene, N. Hazeki, R. N. Ono, G. Sengle, H. Peter Bachinger, and L. Y. Sakai Effects of Fibrillin-1 Degradation on Microfibril Ultrastructure J. Biol. Chem., February 9, 2007; 282(6): 4007 - 4020. [Abstract] [Full Text] [PDF] |
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P N Robinson, E Arteaga-Solis, C Baldock, G Collod-Beroud, P Booms, A De Paepe, H C Dietz, G Guo, P A Handford, D P Judge, et al. The molecular genetics of Marfan syndrome and related disorders J. Med. Genet., October 1, 2006; 43(10): 769 - 787. [Abstract] [Full Text] [PDF] |
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L. C. Nehring, A. Miyamoto, P. W. Hein, G. Weinmaster, and J. M. Shipley The Extracellular Matrix Protein MAGP-2 Interacts with Jagged1 and Induces Its Shedding from the Cell Surface J. Biol. Chem., May 27, 2005; 280(21): 20349 - 20355. [Abstract] [Full Text] [PDF] |
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S. A. Jensen, A. R. Corbett, V. Knott, C. Redfield, and P. A. Handford Ca2+-dependent Interface Formation in Fibrillin-1 J. Biol. Chem., April 8, 2005; 280(14): 14076 - 14084. [Abstract] [Full Text] [PDF] |
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A. Marson, M. J. Rock, S. A. Cain, L. J. Freeman, A. Morgan, K. Mellody, C. A. Shuttleworth, C. Baldock, and C. M. Kielty Homotypic Fibrillin-1 Interactions in Microfibril Assembly J. Biol. Chem., February 11, 2005; 280(6): 5013 - 5021. [Abstract] [Full Text] [PDF] |
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L. I. Los, R. J. van der Worp, M. J.A. van Luyn, and J. M.M. Hooymans Presence of Collagen IV in the Ciliary Zonules of the Human Eye: An Immunohistochemical Study by LM and TEM J. Histochem. Cytochem., June 1, 2004; 52(6): 789 - 795. [Abstract] [Full Text] [PDF] |
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Z. Isogai, R. N. Ono, S. Ushiro, D. R. Keene, Y. Chen, R. Mazzieri, N. L. Charbonneau, D. P. Reinhardt, D. B. Rifkin, and L. Y. Sakai Latent Transforming Growth Factor beta -binding Protein 1 Interacts with Fibrillin and Is a Microfibril-associated Protein J. Biol. Chem., January 17, 2003; 278(4): 2750 - 2757. [Abstract] [Full Text] [PDF] |
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G. Lin, K. Tiedemann, T. Vollbrandt, H. Peters, B. Batge, J. Brinckmann, and D. P. Reinhardt Homo- and Heterotypic Fibrillin-1 and -2 Interactions Constitute the Basis for the Assembly of Microfibrils J. Biol. Chem., December 20, 2002; 277(52): 50795 - 50804. [Abstract] [Full Text] [PDF] |
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C. M. Kielty, M. J. Sherratt, and C. A. Shuttleworth Elastic fibres J. Cell Sci., July 15, 2002; 115(14): 2817 - 2828. [Abstract] [Full Text] [PDF] |
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Z. Isogai, A. Aspberg, D. R. Keene, R. N. Ono, D. P. Reinhardt, and L. Y. Sakai Versican Interacts with Fibrillin-1 and Links Extracellular Microfibrils to Other Connective Tissue Networks J. Biol. Chem., February 1, 2002; 277(6): 4565 - 4572. [Abstract] [Full Text] [PDF] |
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S. A. Jensen, D. P. Reinhardt, M. A. Gibson, and A. S. Weiss Protein Interaction Studies of MAGP-1 with Tropoelastin and Fibrillin-1 J. Biol. Chem., October 19, 2001; 276(43): 39661 - 39666. [Abstract] [Full Text] [PDF] |
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C. Baldock, A. J. Koster, U. Ziese, M. J. Rock, M. J. Sherratt, K. E. Kadler, C. A. Shuttleworth, and C. M. Kielty The Supramolecular Organization of Fibrillin-rich Microfibrils J. Cell Biol., March 5, 2001; 152(5): 1045 - 1056. [Abstract] [Full Text] [PDF] |
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J. L ASHWORTH, C. M KIELTY, and D. McLEOD Fibrillin and the eye Br. J. Ophthalmol., November 1, 2000; 84(11): 1312 - 1317. [Full Text] [PDF] |
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D. P. Reinhardt, J. E. Gambee, R. N. Ono, H. P. Bachinger, and L. Y. Sakai Initial Steps in Assembly of Microfibrils. FORMATION OF DISULFIDE-CROSS-LINKED MULTIMERS CONTAINING FIBRILLIN-1 J. Biol. Chem., January 21, 2000; 275(3): 2205 - 2210. [Abstract] [Full Text] [PDF] |
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P. N Robinson and M. Godfrey The molecular genetics of Marfan syndrome and related microfibrillopathies J. Med. Genet., January 1, 2000; 37(1): 9 - 25. [Abstract] [Full Text] |
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M. Raghunath, R. Cankay, U. Kubitscheck, J. D. Fauteck, R. Mayne, D. Aeschlimann, and U. Schlotzer-Schrehardt Transglutaminase Activity in the Eye: Cross-linking in Epithelia and Connective Tissue Structures Invest. Ophthalmol. Vis. Sci., November 1, 1999; 40(12): 2780 - 2787. [Abstract] [Full Text] [PDF] |
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D. Wright, V. Duance, T. Wess, C. Kielty, and P. Purslow The supramolecular organisation of fibrillin-rich microfibrils determines the mechanical properties of bovine zonular filaments J. Exp. Biol., January 11, 1999; 202(21): 3011 - 3020. [Abstract] [PDF] |
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J. Ashworth, V Kelly, R Wilson, C. Shuttleworth, and C. Kielty Fibrillin assembly: dimer formation mediated by amino-terminal sequences J. Cell Sci., January 10, 1999; 112(20): 3549 - 3558. [Abstract] [PDF] |
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M. A. Gibson, M. L. Finnis, J. S. Kumaratilake, and E. G. Cleary Microfibril-associated Glycoprotein-2 (MAGP-2) Is Specifically Associated with Fibrillin-containing Microfibrils but Exhibits More Restricted Patterns of Tissue Localization and Developmental Expression Than Its Structural Relative MAGP-1 J. Histochem. Cytochem., August 1, 1998; 46(8): 871 - 886. [Abstract] [Full Text] |
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J. Saharinen, J. Taipale, O. Monni, and J. Keski-Oja Identification and Characterization of a New Latent Transforming Growth Factor-beta -binding Protein, LTBP-4 J. Biol. Chem., July 17, 1998; 273(29): 18459 - 18469. [Abstract] [Full Text] [PDF] |
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T.J. Wess, P.P. Purslow, M.J. Sherratt, J. Ashworth, C.A. Shuttleworth, and C.M. Kielty Calcium Determines the Supramolecular Organization of Fibrillin-rich Microfibrils J. Cell Biol., May 4, 1998; 141(3): 829 - 837. [Abstract] [Full Text] [PDF] |
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M. A. Gibson, J. S. Kumaratilake, and E. G. Cleary Immunohistochemical and Ultrastructural Localization of MP78/70 (big-h3) in Extracellular Matrix of Developing and Mature Bovine Tissues J. Histochem. Cytochem., December 1, 1997; 45(12): 1683 - 1696. [Abstract] [Full Text] [PDF] |
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M. L Finnis and M. A Gibson Microfibril-associated Glycoprotein-1 (MAGP-1) Binds to the Pepsin-resistant Domain of the alpha 3(VI) Chain of Type VI Collagen J. Biol. Chem., September 5, 1997; 272(36): 22817 - 22823. [Abstract] [Full Text] [PDF] |
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D. P. Reinhardt, T. Sasaki, B. J. Dzamba, D. R. Keene, M.-L. Chu, W. Gohring, R. Timpl, and L. Y. Sakai Fibrillin-1 and Fibulin-2 Interact and Are Colocalized in Some Tissues J. Biol. Chem., August 9, 1996; 271(32): 19489 - 19496. [Abstract] [Full Text] [PDF] |
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M. A. Gibson, G. Hatzinikolas, J. S. Kumaratilake, L. B. Sandberg, J. K. Nicholl, G. R. Sutherland, and E. G. Cleary Further Characterization of Proteins Associated with Elastic Fiber Microfibrils Including the Molecular Cloning of MAGP-2 (MP25) J. Biol. Chem., January 12, 1996; 271(2): 1096 - 1103. [Abstract] [Full Text] [PDF] |
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S.-L. Jacobson, D. Kimberly, K. Thornburg, and C. Maslen Localization of Fibrillin-I in the Human Term Placenta Reproductive Sciences, September 1, 1995; 2(5): 686 - 690. [Abstract] [PDF] |
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C. Kielty, T Rantamaki, A. Child, C. Shuttleworth, and L Peltonen Cysteine-to-arginine point mutation in a 'hybrid' eight-cysteine domain of FBN1: consequences for fibrillin aggregation and microfibril assembly J. Cell Sci., January 3, 1995; 108(3): 1317 - 1323. [Abstract] [PDF] |
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C. Kielty and C. Shuttleworth Synthesis and assembly of fibrillin by fibroblasts and smooth muscle cells J. Cell Sci., January 9, 1993; 106(1): 167 - 173. [Abstract] [PDF] |
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