Effects of decorin proteoglycan on fibrillogenesis, ultrastructure, and mechanics of type I collagen gels.
暂无分享,去创建一个
Clayton J. Underwood | Shawn P Reese | Shawn P. Reese | Clayton J Underwood | Jeffrey A Weiss | J. Weiss | S. Reese
[1] Dave Balachandran,et al. Incorporation of a decorin biomimetic enhances the mechanical properties of electrochemically aligned collagen threads. , 2011, Acta biomaterialia.
[2] Edward A. Sander,et al. Image-based biomechanics of collagen-based tissue equivalents , 2009, IEEE Engineering in Medicine and Biology Magazine.
[3] K. Kubota,et al. Effect of DNA structure on the formation of collagen-DNA complex. , 2005, International journal of biological macromolecules.
[4] J E Scott,et al. Elasticity in extracellular matrix ‘shape modules’ of tendon, cartilage, etc. A sliding proteoglycan‐filament model , 2003, The Journal of physiology.
[5] J. Trotter,et al. The effect of proteoglycans on the morphology of collagen fibrils formed in vitro. , 1987, Collagen and related research.
[6] Klod Kokini,et al. Fibril microstructure affects strain transmission within collagen extracellular matrices. , 2009, Journal of biomechanical engineering.
[7] J. Scott,et al. Proteoglycan-collagen arrangements in developing rat tail tendon. An electron microscopical and biochemical investigation. , 1981, The Biochemical journal.
[8] C. S. Strom,et al. Spherulitic networks: from structure to rheological property. , 2009, The journal of physical chemistry. B.
[9] E. Zycband,et al. Collagen fibrillogenesis in situ: Fibril segments become long fibrils as the developing tendon matures , 1997, Developmental dynamics : an official publication of the American Association of Anatomists.
[10] G. Pringle,et al. Immunoelectron microscopic localization of the core protein of decorin near the d and e bands of tendon collagen fibrils by use of monoclonal antibodies. , 1990, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[11] F H Silver,et al. Self-assembly of collagen fibers. Influence of fibrillar alignment and decorin on mechanical properties. , 1997, Biophysical journal.
[12] J. Scott. Proteoglycan-fibrillar collagen interactions. , 1988, The Biochemical journal.
[13] D. Heinegård,et al. Binding of fibromodulin and decorin to separate sites on fibrillar collagens. , 1993, The Journal of biological chemistry.
[14] Paul G Scott,et al. Crystal structure of the dimeric protein core of decorin, the archetypal small leucine-rich repeat proteoglycan. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[15] L. Fisher,et al. Decorin interacts with fibrillar collagen of embryonic and adult human skin. , 1991, Journal of structural biology.
[16] D. Scharnweber,et al. Fibrillogenesis of collagen types I, II, and III with small leucine-rich proteoglycans decorin and biglycan. , 2006, Biomacromolecules.
[17] J. Hassell,et al. Regulation of corneal collagen fibrillogenesis in vitro by corneal proteoglycan (lumican and decorin) core proteins. , 1993, Experimental eye research.
[18] Behnam Pourdeyhimi,et al. Measuring Fiber Orientation in Nonwovens , 1996 .
[19] W. M. S T E I N,et al. An algorithm for extracting the network geometry of three-dimensional collagen gels , 2007 .
[20] J. Hassell,et al. The molecular basis of corneal transparency. , 2010, Experimental eye research.
[21] M. Yoder,et al. Collagen oligomers modulate physical and biological properties of three-dimensional self-assembled matrices. , 2011, Biopolymers.
[22] Louis J Soslowsky,et al. Strain-rate sensitive mechanical properties of tendon fascicles from mice with genetically engineered alterations in collagen and decorin. , 2004, Journal of biomechanical engineering.
[23] M. Raspanti,et al. Collagen fibril structure is affected by collagen concentration and decorin. , 2007, Biomacromolecules.
[24] Abbas F. Jawad,et al. Investigating Tendon Fascicle Structure–Function Relationships in a Transgenic-Age Mouse Model Using Multiple Regression Models , 2004, Annals of Biomedical Engineering.
[25] Ray Vanderby,et al. Subfailure damage in ligament: a structural and cellular evaluation. , 2002, Journal of applied physiology.
[26] D. Heinegård,et al. Interaction of a 59-kDa connective tissue matrix protein with collagen I and collagen II. , 1989, The Journal of biological chemistry.
[27] Behnam Pourdeyhimi,et al. Measuring Fiber Orientation in Nonwovens , 1996 .
[28] R. Iozzo,et al. Biologically Active Decorin Is a Monomer in Solution* , 2004, Journal of Biological Chemistry.
[29] Victor H Barocas,et al. Image-based multiscale modeling predicts tissue-level and network-level fiber reorganization in stretched cell-compacted collagen gels , 2009, Proceedings of the National Academy of Sciences.
[30] A. Oldberg,et al. The role of small leucine-rich proteoglycans in collagen fibrillogenesis. , 2010, Matrix biology : journal of the International Society for Matrix Biology.
[31] J. Fallon,et al. Collagen fibril bundles: a branching assembly unit in tendon morphogenesis. , 1989, Development.
[32] T. Irving,et al. Microfibrillar structure of type I collagen in situ. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[33] J. Scott. Proteodermatan and proteokeratan sulfate (decorin, lumican/fibromodulin) proteins are horseshoe shaped. Implications for their interactions with collagen. , 1996, Biochemistry.
[34] R. Iozzo,et al. The glycosaminoglycan chain of decorin plays an important role in collagen fibril formation at the early stages of fibrillogenesis , 2007, The FEBS journal.
[35] D. Buttle,et al. Improved quantitation and discrimination of sulphated glycosaminoglycans by use of dimethylmethylene blue. , 1986, Biochimica et biophysica acta.
[36] Heath B. Henninger,et al. Effect of dermatan sulfate glycosaminoglycans on the quasi‐static material properties of the human medial collateral ligament , 2007, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[37] J. Scott,et al. Dermatan sulphate-rich proteoglycan associates with rat tail-tendon collagen at the d band in the gap region. , 1981, The Biochemical journal.
[38] L. Soslowsky,et al. Influence of decorin and biglycan on mechanical properties of multiple tendons in knockout mice. , 2005, Journal of biomechanical engineering.
[39] I. Weber,et al. Model Structure of Decorin and Implications for Collagen Fibrillogenesis* , 1996, The Journal of Biological Chemistry.
[40] Renato V. Iozzo,et al. Targeted Disruption of Decorin Leads to Abnormal Collagen Fibril Morphology and Skin Fragility , 1997, Journal of Cell Biology.
[41] A. D'Amore,et al. Characterization of the complete fiber network topology of planar fibrous tissues and scaffolds. , 2010, Biomaterials.
[42] Robert A. Brown,et al. Engineering Functional Collagen Scaffolds: Cyclical Loading Increases Material Strength and Fibril Aggregation , 2007 .
[43] J. P. Robinson,et al. Time-lapse confocal reflection microscopy of collagen fibrillogenesis and extracellular matrix assembly in vitro. , 2000, Biopolymers.
[44] K. Doane,et al. Collagen fibrillogenesis in vitro: interaction of types I and V collagen regulates fibril diameter. , 1990, Journal of cell science.
[45] Gerard A Ateshian,et al. Modeling the matrix of articular cartilage using a continuous fiber angular distribution predicts many observed phenomena. , 2009, Journal of biomechanical engineering.
[46] R. Iozzo,et al. Genetic Evidence for the Coordinated Regulation of Collagen Fibrillogenesis in the Cornea by Decorin and Biglycan* , 2009, Journal of Biological Chemistry.
[47] M. Raspanti,et al. Glycosaminoglycans show a specific periodic interaction with type I collagen fibrils. , 2008, Journal of structural biology.
[48] L. Kaufman,et al. Elastic moduli of collagen gels can be predicted from two-dimensional confocal microscopy. , 2009, Biophysical journal.
[49] E. Schönherr,et al. Decorin-Type I Collagen Interaction , 1995, The Journal of Biological Chemistry.
[50] L. Berhan,et al. Modelling the negative Poisson's ratio of compressed fused fibre networks , 2009 .
[51] Clayton J. Underwood,et al. Contribution of glycosaminoglycans to viscoelastic tensile behavior of human ligament. , 2009, Journal of applied physiology.
[52] D. Parry,et al. An estimate of the mean length of collagen fibrils in rat tail-tendon as a function of age. , 1989, Connective tissue research.
[53] A. Barella. Measuring Fiber Diameter Distribution in Nonwovens , 2000 .
[54] C. Kuo,et al. Collagen fibrillogenesis in tendon development: current models and regulation of fibril assembly. , 2008, Birth defects research. Part C, Embryo today : reviews.
[55] K. Törrönen,et al. Application of selected cationic dyes for the semiquantitative estimation of glycosaminoglycans in histological sections of articular cartilage by microspectrophotometry , 1996, The Histochemical Journal.
[56] Michael Kjaer,et al. Role of extracellular matrix in adaptation of tendon and skeletal muscle to mechanical loading. , 2004, Physiological reviews.
[57] L. Soslowsky,et al. Decorin regulates assembly of collagen fibrils and acquisition of biomechanical properties during tendon development , 2006, Journal of cellular biochemistry.
[58] D. Heinegård,et al. Specific inhibition of type I and type II collagen fibrillogenesis by the small proteoglycan of tendon. , 1984, The Biochemical journal.
[59] Laxminarayanan Krishnan,et al. Design and application of a test system for viscoelastic characterization of collagen gels. , 2004, Tissue engineering.
[60] Victor H Barocas,et al. Deterministic material-based averaging theory model of collagen gel micromechanics. , 2007, Journal of biomechanical engineering.
[61] Steven C George,et al. Noninvasive assessment of collagen gel microstructure and mechanics using multiphoton microscopy. , 2007, Biophysical journal.
[62] R T Tranquillo,et al. A finite element solution for the anisotropic biphasic theory of tissue-equivalent mechanics: the effect of contact guidance on isometric cell traction measurement. , 1997, Journal of biomechanical engineering.
[63] H. Ueda,et al. The modulation of collagen fibril assembly and its structure by decorin: an electron microscopic study. , 2008, Archives of histology and cytology.
[64] F. Reinholt,et al. Fibromodulin-null Mice Have Abnormal Collagen Fibrils, Tissue Organization, and Altered Lumican Deposition in Tendon* , 1999, The Journal of Biological Chemistry.
[65] John E. Scott,et al. The structure of interfibrillar proteoglycan bridges (‘shape modules’) in extracellular matrix of fibrous connective tissues and their stability in various chemical environments , 1998, Journal of anatomy.
[66] L. Soslowsky,et al. Regulation of Collagen Fibril Nucleation and Initial Fibril Assembly Involves Coordinate Interactions with Collagens V and XI in Developing Tendon* , 2011, The Journal of Biological Chemistry.
[67] N. Uldbjerg,et al. A study of the interaction in vitro between type I collagen and a small dermatan sulphate proteoglycan. , 1988, The Biochemical journal.
[68] L. Soslowsky,et al. Development of tendon structure and function: regulation of collagen fibrillogenesis. , 2005, Journal of musculoskeletal & neuronal interactions.
[69] G. Mosser,et al. Dense tissue-like collagen matrices formed in cell-free conditions. , 2006, Matrix biology : journal of the International Society for Matrix Biology.
[70] Louis J. Soslowsky,et al. Effect of Altered Matrix Proteins on Quasilinear Viscoelastic Properties in Transgenic Mouse Tail Tendons , 2003, Annals of Biomedical Engineering.
[71] K. Vogel,et al. Characteristics of the in vitro interaction of a small proteoglycan (PG II) of bovine tendon with type I collagen. , 1989, Matrix.
[72] Adele Hill,et al. Collagen fibrillogenesis: fibronectin, integrins, and minor collagens as organizers and nucleators , 2008, Current opinion in cell biology.
[73] Alexandre Kabla,et al. Strain-Induced Alignment in Collagen Gels , 2009, PloS one.
[74] P. Scott,et al. Increased diameters of collagen fibrils precipitated in vitro in the presence of decorin from various connective tissues. , 1997, Connective tissue research.
[75] J. Paul Robinson,et al. Tensile mechanical properties of three-dimensional type I collagen extracellular matrices with varied microstructure. , 2002, Journal of biomechanical engineering.
[76] Joseph W Freeman,et al. Collagen self-assembly and the development of tendon mechanical properties. , 2003, Journal of biomechanics.