Bioresorbable zinc hydroxyapatite guided bone regeneration membrane for bone regeneration.
暂无分享,去创建一个
M. Otsuka | S. Kuroda | B. Milthorpe | J. Chou | B. Ben-Nissan | Y. Hattori | J. Hao | Maki Komuro | Joshua Chou
[1] N. Lang,et al. Novel bioresorbable strontium hydroxyapatite membrane for guided bone regeneration. , 2015, Clinical oral implants research.
[2] M. Otsuka,et al. The Therapeutic Effect on Bone Mineral Formation from Biomimetic Zinc Containing Tricalcium Phosphate (ZnTCP) in Zinc-Deficient Osteoporotic Mice , 2013, PloS one.
[3] K. Okada,et al. Plasminogen Plays a Crucial Role in Bone Repair , 2013, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[4] Y. Tabata,et al. Development of a New Barrier Membrane for Guided Bone Regeneration: an in Vitro and in Vivo Study , 2011 .
[5] M. Weitzmann,et al. Zinc stimulates osteoblastogenesis and suppresses osteoclastogenesis by antagonizing NF-κB activation , 2011, Molecular and Cellular Biochemistry.
[6] I. Kwun,et al. Zinc may increase bone formation through stimulating cell proliferation, alkaline phosphatase activity and collagen synthesis in osteoblastic MC3T3-E1 cells , 2010, Nutrition research and practice.
[7] H. Kim,et al. Bone regeneration by bioactive hybrid membrane containing FGF2 within rat calvarium. , 2010, Journal of biomedical materials research. Part A.
[8] Jun Beom Park,et al. Chitosan/poly(L-lactic acid) multilayered membrane for guided tissue regeneration. , 2009, Journal of biomedical materials research. Part A.
[9] D. R. Cerutis,et al. Non-bioabsorbable vs. bioabsorbable membrane: assessment of their clinical efficacy in guided tissue regeneration technique. A systematic review. , 2009, Journal of oral science.
[10] R. Jung,et al. A randomized-controlled clinical trial evaluating clinical and radiological outcomes after 3 and 5 years of dental implants placed in bone regenerated by means of GBR techniques with or without the addition of BMP-2. , 2009, Clinical oral implants research.
[11] P. Giannoudis,et al. A cost analysis of treatment of tibial fracture nonunion by bone grafting or bone morphogenetic protein-7 , 2009, International Orthopaedics.
[12] F. Schwarz,et al. Regeneration of periodontal tissues: combinations of barrier membranes and grafting materials - biological foundation and preclinical evidence: a systematic review. , 2008, Journal of clinical periodontology.
[13] H. Tal,et al. Cross-linked and non-cross-linked collagen barrier membranes disintegrate following surgical exposure to the oral environment: a histological study in the cat. , 2008, Clinical oral implants research.
[14] H. Tal,et al. Biodegradation of three different collagen membranes in the rat calvarium: a comparative study. , 2008, Journal of periodontology.
[15] I. Dimitrakopoulos,et al. Comparative study of 5 different membranes for guided bone regeneration of rabbit mandibular defects beyond critical size. , 2008, Medical science monitor : international medical journal of experimental and clinical research.
[16] H. Tal,et al. Long-term bio-degradation of cross-linked and non-cross-linked collagen barriers in human guided bone regeneration. , 2008, Clinical oral implants research.
[17] D. Buser,et al. Effect of two different bioabsorbable collagen membranes on guided bone regeneration: a comparative histomorphometric study in the dog mandible. , 2007, Journal of periodontology.
[18] Yihong Li,et al. Antibacterial Effect of Zinc Phosphate Mineralized Guided Bone Regeneration Membranes , 2007, Implant dentistry.
[19] C. Carstens,et al. Gesundheitsökonomische Überlegungen für den Einsatz des Knochenwachstumsfaktors BMP-2 in der Wirbelsäulenchirurgie für das deutsche Gesundheitssystem , 2006 .
[20] G. Schmidmaier,et al. Biodegradable polylactide membranes for bone defect coverage: biocompatibility testing, radiological and histological evaluation in a sheep model. , 2006, Clinical oral implants research.
[21] V. Barron,et al. Characterisation of a collagen membrane for its potential use in cardiovascular tissue engineering applications , 2006, Journal of materials science. Materials in medicine.
[22] H. Burt,et al. A PLGA membrane controlling cell behaviour for promoting tissue regeneration. , 2005, Biomaterials.
[23] A. Jheon,et al. Zinc finger transcription factors in skeletal development. , 2004, Critical reviews in oral biology and medicine : an official publication of the American Association of Oral Biologists.
[24] N. Ichinose,et al. Effect of controlled zinc release on bone mineral density from injectable Zn-containing beta-tricalcium phosphate suspension in zinc-deficient diseased rats. , 2004, Journal of biomedical materials research. Part A.
[25] E. Hedner,et al. Recombinant bone morphogenetic protein-2 enhances bone healing, guided by osteopromotive e-PTFE membranes: An experimental study in rats , 1995, Calcified Tissue International.
[26] Y. Kinoshita. Regenerative Medicine for Jawbone , 2004 .
[27] H. Ohgushi,et al. Osteogenic differentiation of cultured rat and human bone marrow cells on the surface of zinc-releasing calcium phosphate ceramics. , 2003, Journal of biomedical materials research. Part A.
[28] N. Ichinose,et al. Effect of particle size on zinc release from zinc containing tricalcium phosphate (ZnTCP) in Zn-deficient osteoporosis rats. , 2003, Bio-medical materials and engineering.
[29] Y. M. Lee,et al. Molded porous poly (L-lactide) membranes for guided bone regeneration with enhanced effects by controlled growth factor release. , 2001, Journal of biomedical materials research.
[30] H L Wang,et al. Collagen membranes: a review. , 2001, Journal of periodontology.
[31] J. Feijen,et al. Cross-linking and characterisation of gelatin matrices for biomedical applications , 2000, Journal of biomaterials science. Polymer edition.
[32] H. Dimai,et al. Effects of Zinc on Human Skeletal Alkaline Phosphatase Activity In Vitro , 1999, Calcified Tissue International.
[33] S. Lee,et al. Controlled release of platelet-derived growth factor from porous poly(L-lactide) membranes for guided tissue regeneration. , 1998, Journal of controlled release : official journal of the Controlled Release Society.
[34] Masayoshi Yamaguchi,et al. Role of zinc in bone formation and bone resorption , 1998 .
[35] A. Linde,et al. Importance of delivery systems for growth-stimulatory factors in combination with osteopromotive membranes. An experimental study using rhBMP-2 in rat mandibular defects. , 1997, Journal of biomedical materials research.
[36] T. Karring,et al. Augmentation of the rat mandible using guided tissue regeneration. , 1994, Clinical oral implants research.
[37] N. Lang,et al. Guided tissue regeneration and dental implants. , 1994, Periodontology 2000.
[38] Todd V Scantlebury,et al. 1982-1992: A Decade of Technology Development for Guided Tissue Regeneration. , 1993, Journal of periodontology.
[39] Jan Gottlow,et al. Guided Tissue Regeneration Using Bioresorbable and Non-Resorbable Devices: Initial Healing and Long-Term Results. , 1993, Journal of periodontology.
[40] P. Alberius,et al. Osteopromotion for cranioplasty. An experimental study in rats using a membrane technique. , 1991, Journal of neurosurgery.
[41] S. Nyman,et al. Healing of Bone Defects by Guided Tissue Regeneration , 1988, Plastic and reconstructive surgery.
[42] Y. Suketa,et al. Stimulatory effect of zinc on bone formation in tissue culture. , 1987, Biochemical pharmacology.
[43] M. Yamaguchi,et al. Action of zinc on bone metabolism in rats. Increases in alkaline phosphatase activity and DNA content. , 1986, Biochemical pharmacology.
[44] A. H. Melcher,et al. Osteogenic capacity of periosteal and osteoperiosteal flaps elevated from the parietal bone of the rat. , 1971, Archives of oral biology.