Biomimetic Enamel Regeneration Mediated by Leucine-Rich Amelogenin Peptide
暂无分享,去创建一个
S. Y. Kwak | S. Kwak | Y. Yamakoshi | J. Simmer | H. Margolis | J. Simmer | A. Litman | S Y Kwak | A Litman | H C Margolis | Y Yamakoshi | J P Simmer | H.C. Margolis
[1] J. Moradian-Oldak,et al. Interactions of Amelogenins with Octacalcium Phosphate Crystal Faces Are Dose Dependent , 2004, Calcified Tissue International.
[2] K. Onuma,et al. Nucleation and growth of hydroxyapatite nanocrystals for nondestructive repair of early caries lesions , 2005 .
[3] D. Schlesinger,et al. Inhibition of calcium phosphate precipitation by human salivary acidic proline-rich proteins: Structure-activity relationships , 1987, Calcified Tissue International.
[4] G. Landini,et al. Hierarchical modelling of in situ elastic deformation of human enamel based on photoelastic and diffraction analysis of stresses and strains. , 2014, Acta biomaterialia.
[5] D. I. Hay,et al. Relationship between concentration of human salivary statherin and inhibition of calcium phosphate precipitation in stimulated human parotid saliva. , 1984, Journal of dental research.
[6] S. Busch. Regeneration of human tooth enamel. , 2004, Angewandte Chemie.
[7] S. Kwak,et al. Role of mineralization inhibitors in the regulation of hard tissue biomineralization: relevance to initial enamel formation and maturation , 2014, Front. Physiol..
[8] Kyle V. Camarda,et al. Adhesive/Dentin Interface: The Weak Link in the Composite Restoration , 2010, Annals of Biomedical Engineering.
[9] J. Elliott,et al. Structure and chemistry of the apatites and other calcium orthophosphates , 1994 .
[10] D. I. Hay,et al. Effect of human salivary proteins on the precipitation kinetics of calcium phosphate , 1979, Calcified Tissue International.
[11] Masayuki Otsuki,et al. Materials chemistry: A synthetic enamel for rapid tooth repair , 2005, Nature.
[12] H. Margolis,et al. Pyrophosphate adsorption onto hydroxyapatite and its inhibition of crystal growth. , 1987, Compendium (Newtown, Pa.). Supplement.
[13] E. Beniash,et al. Leucine-rich Amelogenin Peptides Regulate Mineralization in vitro , 2011, Journal of dental research.
[14] E. Beniash,et al. Effects of phosphorylation on the self-assembly of native full-length porcine amelogenin and its regulation of calcium phosphate formation in vitro. , 2011, Journal of structural biology.
[15] E. Beniash,et al. Role of 20-kDa Amelogenin (P148) Phosphorylation in Calcium Phosphate Formation in Vitro* , 2009, The Journal of Biological Chemistry.
[16] H. Margolis,et al. Composition of Human Plaque Fluid , 1988, Journal of dental research.
[17] Zhi Sun,et al. Controlled remineralization of enamel in the presence of amelogenin and fluoride. , 2009, Biomaterials.
[18] J. Moradian-Oldak,et al. The structural biology of the developing dental enamel matrix. , 1999, Journal of structural biology.
[19] J. Moradian-Oldak,et al. Effects of amelogenin on the transforming surface microstructures of Bioglass in a calcifying solution. , 2000, Journal of biomedical materials research.
[20] 山岸 一枝. A synthetic enamel for rapid tooth repair , 2008 .
[21] R. Kniep,et al. Morphogenesis and Structure of Human Teeth in Relation to Biomimetically Grown Fluorapatite−Gelatine Composites , 2001 .
[22] Otto Backer Dirks,et al. Posteruptive Changes in Dental Enamel , 1966 .
[23] D. I. Hay,et al. Equilibrium dialysis and ultrafiltration studies of calcium and phosphate binding by human salivary proteins. Implications for salivary supersaturation with respect to calcium phosphate salts , 2006, Calcified Tissue International.
[24] E. Kidd,et al. Occlusal caries: pathology, diagnosis and logical management. , 2001, Dental update.
[25] F. Moztarzadeh,et al. Study on the influence of leucine-rich amelogenin peptide (LRAP) on the remineralization of enamel defects via micro-focus x-ray computed tomography and nanoindentation , 2015, Biomedical materials.
[26] D. I. Hay,et al. Basic Biological Sciences Relationship between Concentration of Human Salivary Statherin and Inhibition of Calcium Phosphate Precipitation in Stimulated Human Parotid Saliva , 1984 .
[27] T. Nagano,et al. Mmp-20 and Klk4 Cleavage Site Preferences for Amelogenin Sequences , 2009, Journal of dental research.
[28] G. H. Nancollas,et al. The influence of multidentate organic phosphonates on the crystal growth of hydroxyapatite , 1973, Calcified Tissue Research.
[29] D. Morgan,et al. Inorganic pyrophosphate in plasma in normal persons and in patients with hypophosphatasia, osteogenesis imperfecta, and other disorders of bone. , 1971, The Journal of clinical investigation.
[30] H. Fleisch,et al. Mechanism of Calcification: Inhibitory Role of Pyrophosphate , 1962, Nature.
[31] D. Zero,et al. A New in vitro Model to Study the Relationship of Gap Size and Secondary Caries , 2007, Caries Research.
[32] H. Fleisch,et al. Diphosphonates Inhibit Hydroxyapatite Dissolution in vitro and Bone Resorption in Tissue Culture and in vivo , 1969, Science.
[33] E. Beniash,et al. Regulation of calcium phosphate formation by amelogenins under physiological conditions. , 2011, European journal of oral sciences.
[34] M. Farajollahi,et al. Leucine-rich amelogenin peptide (LRAP) as a surface primer for biomimetic remineralization of superficial enamel defects: An in vitro study. , 2015, Scanning.
[35] A. Fincham,et al. Molecular mechanisms of dental enamel formation. , 1995, Critical reviews in oral biology and medicine : an official publication of the American Association of Oral Biologists.
[36] F. Feagin,et al. REMINERALIZATION OF DENTAL ENAMEL BY SALIVA IN VITRO * , 1965, Annals of the New York Academy of Sciences.
[37] E. Beniash,et al. The effect of recombinant mouse amelogenins on the formation and organization of hydroxyapatite crystals in vitro. , 2005, Journal of structural biology.
[38] H. Fleisch,et al. Diphosphonates Inhibit Formation of Calcium Phosphate Crystals in vitro and Pathological Calcification in vivo , 1969, Science.
[39] E. Beniash,et al. Role of Macromolecular Assembly of Enamel Matrix Proteins in Enamel Formation , 2006, Journal of dental research.
[40] Q. Ruan,et al. Development of amelogenin-chitosan hydrogel for in vitro enamel regrowth with a dense interface. , 2014, Journal of visualized experiments : JoVE.