Collagen fibril form and function.
暂无分享,去创建一个
[1] P. Timmins,et al. Interpretation of the low-angle meridional neutron diffraction patterns from collagen fibres in terms of the amino acid sequence , 1980 .
[2] J. Petruska,et al. Recent studies with the electron microscope on ordered aggregates of the tropocollagen macromolecule , 1963 .
[3] E. Hedbom,et al. Cartilage Fibrils of Mammals are Biochemically Heterogeneous: Differential Distribution of Decorin and Collagen IX , 1998, The Journal of cell biology.
[4] 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.
[5] 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.
[6] K. Porter,et al. Collagen Formation by Fibroblasts of the Chick Embryo Dermis , 1959, The Journal of biophysical and biochemical cytology.
[7] F. Reinholt,et al. Association of the Aggrecan Keratan Sulfate-rich Region with Collagen in Bovine Articular Cartilage* , 1999, The Journal of Biological Chemistry.
[8] T. Ludwig,et al. Molecular structure and interaction of recombinant human type XVI collagen. , 2004, Journal of molecular biology.
[9] D A Parry,et al. Analysis of the primary structure of collagen for the origins of molecular packing. , 1973, Journal of molecular biology.
[10] P. Bishop. Structural macromolecules and supramolecular organisation of the vitreous gel , 2000, Progress in Retinal and Eye Research.
[11] J. Revel,et al. Subfibrillar structure of type I collagen observed by atomic force microscopy. , 1993, Biophysical journal.
[12] R. Suzuki,et al. Twisted plywood structure of an alternating lamellar pattern in cellular cementum of human teeth , 2000, Anatomy and Embryology.
[13] C. Urbanke,et al. Characterization of whole fibril-forming collagen proteins of types I, III, and V from fetal calf skin by infrared matrix-assisted laser desorption ionization mass spectrometry. , 2004, Analytical Chemistry.
[14] Allen J. Bailey,et al. Molecular mechanisms of ageing in connective tissues , 2001, Mechanisms of Ageing and Development.
[15] T. Ushiki,et al. The subfibrillar arrangement of corneal and scleral collagen fibrils as revealed by scanning electron and atomic force microscopy. , 2000, Archives of histology and cytology.
[16] A. Hammersley,et al. A consensus model for molecular packing of type I collagen. , 1998, Journal of structural biology.
[17] U Ziese,et al. Corneal collagen fibril structure in three dimensions: Structural insights into fibril assembly, mechanical properties, and tissue organization , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[18] J. Orgel,et al. The in situ conformation and axial location of the intermolecular cross-linked non-helical telopeptides of type I collagen. , 2000, Structure.
[19] A. Ruggeri,et al. Ultrastructure of the Connective Tissue Matrix , 1984, Electron Microscopy in Biology and Medicine.
[20] R Kamiyama,et al. Fibrous long spacing-like fibers in the bone marrow of myeloproliferative disorder , 1982, Virchows Archiv. B, Cell pathology including molecular pathology.
[21] A J Bailey,et al. Effect of chemical modifications on the susceptibility of collagen to proteolysis. II. Dehydrothermal crosslinking. , 1992, International journal of biological macromolecules.
[22] N. Schachar,et al. Collagen fibril structure of normal, aging, and osteoarthritic cartilage , 1992, The Journal of pathology.
[23] P. Bruckner,et al. Macromolecular Specificity of Collagen Fibrillogenesis , 2003, Journal of Biological Chemistry.
[24] J. Sanders,et al. Collagen fibril diameters increase and fibril densities decrease in skin subjected to repetitive compressive and shear stresses. , 2001, Journal of biomechanics.
[25] A. Hammersley,et al. Type I collagen packing, conformation of the triclinic unit cell. , 1995, Journal of molecular biology.
[26] D. Parry,et al. A D-periodic narrow filament in collagen , 1974, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[27] E. Jones,et al. Analysis of structural design features in collagen. , 1991, Journal of molecular biology.
[28] D. Hulmes,et al. Tyrosine-rich acidic matrix protein (TRAMP) accelerates collagen fibril formation in vitro. , 1993, The Journal of biological chemistry.
[29] M. Kobayashi,et al. Association of type VI collagen with D-periodic collagen fibrils in developing tail tendons of mice. , 1997, Archives of histology and cytology.
[30] 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.
[31] H. Hofmann,et al. Comparative analysis of the sequences of the three collagen chains α1(I), α2 and α1(III): Functional and genetic aspects , 1980 .
[32] R. Iozzo,et al. Decorin, epiphycan, and lumican genes are closely linked on murine Chromosome 10 and are deleted in lethal steel mutants , 1999, Mammalian Genome.
[33] D. Eyre,et al. Covalent Cross-linking of the NC1 Domain of Collagen Type IX to Collagen Type II in Cartilage* , 2004, Journal of Biological Chemistry.
[34] D. Hulmes,et al. Crystalline regions in collagen fibrils. , 1985, Journal of molecular biology.
[35] N. Sasaki,et al. Elongation mechanism of collagen fibrils and force-strain relations of tendon at each level of structural hierarchy. , 1996, Journal of biomechanics.
[36] K A Derwin,et al. Proteoglycans and glycosaminoglycan fine structure in the mouse tail tendon fascicle , 2001, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[37] D. Birk,et al. Type V collagen: molecular structure and fibrillar organization of the chicken alpha 1(V) NH2-terminal domain, a putative regulator of corneal fibrillogenesis , 1993, The Journal of cell biology.
[38] Y. Imamura,et al. The fibril structure of type V collagen triple-helical domain. , 2001, Micron.
[39] B. Trus,et al. Compressed microfibril models of the native collagen fibril , 1980, Nature.
[40] D. Birk,et al. Type V collagen: heterotypic type I/V collagen interactions in the regulation of fibril assembly. , 2001, Micron.
[41] M. Marko,et al. Mineralization of collagen may occur on fibril surfaces: evidence from conventional and high-voltage electron microscopy and three-dimensional imaging. , 1996, Journal of structural biology.
[42] K W Walton,et al. Fibrous long-spacing collagen in human atherosclerosis. , 1978, Atherosclerosis.
[43] P. Hansma,et al. Investigations into the polymorphism of rat tail tendon fibrils using atomic force microscopy. , 2003, Biochemical and biophysical research communications.
[44] H. Scheraga,et al. Structure of the type I collagen molecule based on conformational energy computations: the triple-stranded helix and the N-terminal telopeptide. , 1995, Journal of molecular biology.
[45] T. Aigner,et al. Immunolocalization of Collagen Types II and III in Single Fibrils of Human Articular Cartilage , 2000, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[46] D. Hulmes,et al. Interpretation of the meridional X-ray diffraction pattern from collagen fibres in terms of the known amino acid sequence. , 1977, Journal of molecular biology.
[47] Leena Valmu,et al. Characterization of Recombinant Amino-terminal NC4 Domain of Human Collagen IX , 2004, Journal of Biological Chemistry.
[48] R. Burgeson,et al. α1(XX) Collagen, a New Member of the Collagen Subfamily, Fibril-associated Collagens with Interrupted Triple Helices* , 2001, The Journal of Biological Chemistry.
[49] Axel Ekani-Nkodo,et al. Evidence that collagen fibrils in tendons are inhomogeneously structured in a tubelike manner. , 2003, Biophysical journal.
[50] P. Kannus. Structure of the tendon connective tissue , 2000, Scandinavian journal of medicine & science in sports.
[51] Laurence Besseau,et al. Liquid crystalline assemblies of collagen in bone and in vitro systems. , 2003, Journal of biomechanics.
[52] D. Herbage,et al. Comparative structural studies of reconstituted and native type I and type II collagen fibrils by low-angle X-ray diffraction. , 1987, Biochimica et biophysica acta.
[53] E. Caldini,et al. Histochemical and ultrastructural study of collagen fibers in mouse pubic symphysis during late pregnancy. , 2004, Micron.
[54] I. Alberts,et al. Structure of type I and type III heterotypic collagen fibrils: an X-ray diffraction study. , 2002, Journal of structural biology.
[55] B. Brodsky,et al. Altered collagen structure in mouse tail tendon lacking the α2(I) chain , 1997 .
[56] R. Mecham,et al. Extracellular matrix assembly and structure , 1994 .
[57] F. Vollrath,et al. Biological liquid crystal elastomers. , 2002, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[58] Álvaro R. Osornio-Vargas,et al. Extrapulmonary silicosis: a clinical, morphologic, and ultrastructural study. , 1985, Human pathology.
[59] J. Hempel,et al. Type XII collagen contributes to diversities in human corneal and limbal extracellular matrices. , 1997, Investigative ophthalmology & visual science.
[60] F. Reinholt,et al. Fibromodulin distribution and association with collagen. , 1994, Matrix biology : journal of the International Society for Matrix Biology.
[61] M. Giraud‐Guille,et al. Twisted liquid crystalline supramolecular arrangements in morphogenesis. , 1996, International review of cytology.
[62] D. Parry,et al. Growth and development of collagen fibrils in connective tissue , 1984 .
[63] F. O. Schmitt,et al. ELECTRON MICROSCOPE OBSERVATIONS OF CERTAIN FIBROUS STRUCTURES OBTAINED FROM CONNECTIVE TISSUE EXTRACTS , 1950 .
[64] L. Vaughan,et al. D-periodic distribution of collagen type IX along cartilage fibrils , 1988, The Journal of cell biology.
[65] D. Hulmes,et al. Building collagen molecules, fibrils, and suprafibrillar structures. , 2002, Journal of structural biology.
[66] E. Adachi,et al. In vitro formation of hybrid fibrils of type V collagen and type I collagen. Limited growth of type I collagen into thick fibrils by type V collagen. , 1986, Connective tissue research.
[67] H. Michna,et al. Morphometric analysis of loading-induced changes in collagen-fibril populations in young tendons , 2004, Cell and Tissue Research.
[68] J. Davidson,et al. SPARC-null mice display abnormalities in the dermis characterized by decreased collagen fibril diameter and reduced tensile strength. , 2003, The Journal of investigative dermatology.
[69] M Raspanti,et al. Collagen structure and functional implications. , 2001, Micron.
[70] Andrew D. Miller,et al. Calculated X-ray diffraction pattern from a quasi-hexagonal model for the molecular arrangement in collagen , 1981 .
[71] P. Fratzl,et al. Collagen packing and mineralization. An x-ray scattering investigation of turkey leg tendon. , 1993, Biophysical journal.
[72] T. Moriizumi,et al. DISTRIBUTION OF FIBROUS LONG‐SPACING FIBERS IN NORMAL AND PATHOLOGICAL LYMPH NODES , 1981, Acta pathologica japonica.
[73] Kevin D. Smith,et al. Preliminary observations on the influence of rheumatoid alpha-1-acid glycoprotein on collagen fibril formation. , 2002, Biomedical chromatography : BMC.
[74] E. Eikenberry,et al. An unusual collagen periodicity in skin. , 1980, Biochimica et biophysica acta.
[75] D. Helseth,et al. Collagen self-assembly in vitro. Differentiating specific telopeptide-dependent interactions using selective enzyme modification and the addition of free amino telopeptide. , 1981, The Journal of biological chemistry.
[76] A. Otter,et al. Type I collagen alpha-1 chain C-telopeptide: solution structure determined by 600-MHz proton NMR spectroscopy and implications for its role in collagen fibrillogenesis. , 1988, Biochemistry.
[77] M. Raspanti,et al. Collagen fibril surface: TMAFM, FEG‐SEM and freeze‐etching observations , 1996, Microscopy research and technique.
[78] J. Werkmeister,et al. Organization of fibrillar collagen in the human and bovine cornea: collagen types V and III. , 1997, Connective tissue research.
[79] Mhj Koch,et al. Quantitative analysis of the molecular sliding mechanisms in native tendon collagen — time-resolved dynamic studies using synchrotron radiation , 1987 .
[80] S. Bernocco,et al. Control of Heterotypic Fibril Formation by Collagen V Is Determined by Chain Stoichiometry* , 2001, The Journal of Biological Chemistry.
[81] A. George,et al. Type I collagen N‐Telopeptides adopt an ordered structure when docked to their helix receptor during fibrillogenesis* , 2003, Proteins.
[82] 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.
[83] R. Glanville,et al. Covalent crosslinking between molecules of type I and type III collagen. The involvement of the N-terminal, nonhelical regions of the alpha 1 (I) and alpha 1 (III) chains in the formation of intermolecular crosslinks. , 1982, European journal of biochemistry.
[84] Peter Fratzl,et al. Cellulose and collagen: from fibres to tissues , 2003 .
[85] Terry Magnuson,et al. Lumican Regulates Collagen Fibril Assembly: Skin Fragility and Corneal Opacity in the Absence of Lumican , 1998, The Journal of cell biology.
[86] H. Takahashi-Iwanaga,et al. Early anchoring collagen fibers at the bone—tendon interface are conducted by woven bone formation: light microscope and scanning electron microscope observation using a canine model , 2001, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[87] D J Prockop,et al. Radial packing, order, and disorder in collagen fibrils. , 1995, Biophysical journal.
[88] S. Franc. Ultrastructural evidences of a distinct axial domain within native rat tail tendon collagen fibrils. , 1993, Journal of submicroscopic cytology and pathology.
[89] P. Fratzl,et al. Fibrillar structure and mechanical properties of collagen. , 1998, Journal of structural biology.
[90] D. Helseth,et al. Role of the amino‐terminal extrahelical region of type I collagen in directing the 4D overlap in fibrillogenesis , 1979 .
[91] F. Silver,et al. Transition from viscous to elastic-based dependency of mechanical properties of self-assembled type I collagen fibers , 2001 .
[92] Model of the helical portion of a type I collagen microfibril , 1997 .
[93] J. Farjanel,et al. Liquid crystalline ordering of procollagen as a determinant of three-dimensional extracellular matrix architecture. , 2000, Journal of molecular biology.
[94] D. Parry,et al. Crystalline fibril structure of type II collagen in lamprey notochord sheath. , 1984, Journal of molecular biology.
[95] Bundle formation of principal fibers in rat molars. , 1992, Journal of periodontal research.
[96] R. Fraser,et al. Molecular conformation and packing in collagen fibrils. , 1983, Journal of molecular biology.
[97] M. Morocutti,et al. Differences in the fibril structure of corneal and tendon collagen. An electron microscopy and X-ray diffraction investigation. , 1986, Connective tissue research.
[98] A. Redaelli,et al. Estimation of the binding force of the collagen molecule-decorin core protein complex in collagen fibril. , 2005, Journal of biomechanics.
[99] T. Irving,et al. The in situ supermolecular structure of type I collagen. , 2001, Structure.
[100] J. Randall,et al. Structural Units in Collagen Fibrils , 1954, Nature.
[101] T. Wess,et al. Phasing the meridional diffraction pattern of type I collagen using isomorphous derivatives. , 1989, Journal of molecular biology.
[102] J. A. Chapman,et al. The staining pattern of collagen fibrils. Improved correlation with sequence data. , 1979, The Journal of biological chemistry.
[103] M F Paige,et al. A study of fibrous long spacing collagen ultrastructure and assembly by atomic force microscopy. , 2001, Micron.
[104] N. Sasaki,et al. Time-resolved X-ray diffraction from tendon collagen during creep using synchrotron radiation. , 1999, Journal of biomechanics.
[105] D A Parry,et al. A comparison of the size distribution of collagen fibrils in connective tissues as a function of age and a possible relation between fibril size distribution and mechanical properties , 1978, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[106] E. Eikenberry,et al. Collagen XI Nucleates Self-assembly and Limits Lateral Growth of Cartilage Fibrils* , 2000, The Journal of Biological Chemistry.
[107] J Parkinson,et al. Simple physical model of collagen fibrillogenesis based on diffusion limited aggregation. , 1995, Journal of molecular biology.
[108] David W.L. Hukins,et al. Collagen Fibrils as Examples of Smectic A Biological Fibres , 1977 .
[109] A. Goodship,et al. Comparison of collagen fibril populations in the superficial digital flexor tendons of exercised and nonexercised thoroughbreds. , 1997, Equine veterinary journal.
[110] D. Herbage,et al. Fourier analysis of electron micrographs of positively stained collagen fibrils: application to type I and II collagen typing. , 1998, International journal of biological macromolecules.
[111] H. Scheraga,et al. The energy of formation of internal loops in triple‐helical collagen polypeptides , 1995, Biopolymers.
[112] J. A. Chapman. The regulation of size and form in the assembly of collagen fibrils in vivo , 1989, Biopolymers.
[113] R. Fraser,et al. Molecular packing in type I collagen fibrils. , 1987, Journal of molecular biology.
[114] K. Kilpatrick,et al. N-telopeptide of type II collagen interacts with annexin V on human chondrocytes. , 2003 .
[115] Andrew D. Miller,et al. Structural models for the N‐ and C‐terminal telopeptide regions of interstitial collagens , 1987, Biopolymers.
[116] F. Ortolani,et al. A model for type II collagen fibrils: distinctive D-band patterns in native and reconstituted fibrils compared with sequence data for helix and telopeptide domains. , 2000, Biopolymers.
[117] N. Fullwood,et al. Corneal and scleral collagens--a microscopist's perspective. , 2001, Micron.
[118] J. W. SMITH,et al. Molecular Pattern in Native Collagen , 1968, Nature.
[119] D. Birk,et al. Expression of type XIV collagen in developing chicken tendons: Association with assembly and growth of collagen fibrils , 2000, Developmental dynamics : an official publication of the American Association of Anatomists.
[120] S. Irie,et al. Size control of decorin dermatan sulfate during remodeling of collagen fibrils in healing skin. , 2002, Journal of dermatological science.
[121] J. Cann,et al. Conformational analysis of the type II and type III collagen alpha-1 chain C-telopeptides by 1H NMR and circular dichroism spectroscopy. , 1993, Journal of biomolecular structure & dynamics.
[122] S Mantero,et al. Possible role of decorin glycosaminoglycans in fibril to fibril force transfer in relative mature tendons--a computational study from molecular to microstructural level. , 2003, Journal of biomechanics.
[123] D. Parry,et al. Electron microscope evidence for an 80 Å unit in collagen fibrils , 1979, Nature.