참고문헌
- De Boer HH. History of bone grafts. Clin Orthop Rei Res 1998; 226 :292-298
- Jain AK, Panchagnula R. Skeletal drug delivery systems. Int J Pharm 2001; 206 : 1-12 https://doi.org/10.1016/S0378-5173(00)00468-3
- Kitsugi T, Yamamuro T. Takeuchi H, Ono M. Bonding behavior of three types of hydroxyapatite with different sintering temperatures implanted in bone. Clin Orthop Rel Res 1988; 234 :280-290
- Marcacci M, Kon E, Zaffagnini S, Giardino R et al, Reconstruction of extensive long-bone defects in sheep using porous hydroxyapatite sponges. Calcif Tissue Int 1999; 64: 83-90
- Saffar JL, Colombier ML, Detienville R. Bone formation in triclacium phosphate filled periodontal intrabony lesions. Histological observations in humans. J Periodontal 1990; 61: 209-216 https://doi.org/10.1902/jop.1990.61.4.209
- Cooke FW. Ceramics in orthopedic surgery. Clin Orthop 1992; 276: 135-146
- Verheyen CC, de Wijn JR, van Blitterswijk CA, de Groot K. Evaluation of hydroxyapatite/poly(L-lactide) composites: Mechanical behavior. J Biomed Mater Res 1992; 26: 1277-1296 https://doi.org/10.1002/jbm.820261003
- Doi Y, Horiguchi T, Moriwaki Y, Kitago H, Kajimoto T, Iwayarna Y. Formation of apatitiecollagen complexes. J Biomed Mater Res 1996; 31 : 43-49 https://doi.org/10.1002/(SICI)1097-4636(199605)31:1<43::AID-JBM6>3.0.CO;2-Q
- TenHuisen KS,Martin RI, Klimkiewicz M, Brown PW. Formation and properties of a synthetic bone composite: Hydroxyapatite- collagen. J Biomed Mater Res 1995; 29: 803-810 https://doi.org/10.1002/jbm.820290704
- Furukawa T, Matsusue Y, Yasunaga T et al, Histomorphometric study on high-strength hydroxyapatite/poly(L-lactide) composite rods for internal fixation of bone fractures. J Biomed Mater Res 2000; 50: 410-419
- Zhang R, Ma PX. Porous poly (L-lactic acid)/apatite composites created by biomimetic process. J Biomed Mater Res 1999; 45: 285-293 https://doi.org/10.1002/(SICI)1097-4636(19990615)45:4<285::AID-JBM2>3.0.CO;2-2
- Furukawa T, Matsusue Y, Yasunaga T et al, Biodegradation behavior of ultra-high-strength hydroxyapatite/poly (L-lactide) composite rods for internal fixation of bone fractures. Biomaterials 2000; 21 : 889-898
- Ignajatovic N, Tomic S, Dakic M et al, Synthesis and properties of hydroxyapatite/poly-Llactide composite biomaterials. Biomaterials 1999;20:809-816
- Ignajatovic N, Plavsic M, Miljkovic MS, Zivkovic LM, Uskokovic DP. Microstructural characteristics of calcium hydroxyapatite/poly-L-Iactide based composites. J Microsc 1999; 196: 243-248 https://doi.org/10.1046/j.1365-2818.1999.00623.x
- Liu Q, de Wijn JR, van Blitterswijk CA. Nanoapatite/ polymer composites: Mechanical and physicochemical characteristics. Biomaterials 1997; 18 :1263-1270 https://doi.org/10.1016/S0142-9612(97)00069-0
- Liu Q, de Wijn JR, van Blitterswijk CA. Composite biomaterials with chemical bonding between hydroxyapatite filler particles and PEG/PBT copolymer matrix. J Biomed Mater Res 1998; 40: 490-497 https://doi.org/10.1002/(SICI)1097-4636(19980605)40:3<490::AID-JBM20>3.0.CO;2-M
- Muzzarelli RA, Baldassare V, Conti F et al, Biological activity of chitosan : ultrastructural study. Biomaterials 1988; 9: 247-252 https://doi.org/10.1016/0142-9612(88)90092-0
- Olsen R, Schwartzmiller D, Weppner W, Winandy R. Biomedical applications of chitin and its derivates, In : G. Skjak-Brak, T. Anthonsen, P. Sandford, editors, Chitin and chitosan, 1988; 813-828
- Dernarger-Andre S, Domard A. Chitosan carboxylic acid salts in solution and in the solid state. Carbohydr Polym 1993; 22: 117-126 https://doi.org/10.1016/0144-8617(93)90074-E
- Suh F, Howard JK, Mathew WT. Application of chitosan-based polysaccharide biomaterials in cartilage tissue engineering : a review. Biomaterials 2000; 21: 2589-2598 https://doi.org/10.1016/S0142-9612(00)00126-5
- Ueno H, Nakamura F, Murakami M et at. Evaluation effects of chitosan for the extracellular matrix production by fibroblasts and the growth factors production by macrophage. Biornaterials 2001; 22: 2125-2130
- Jarcho M. Biomaterials aspects of calcium phosphates properties and applications. Dent Clin North Am 1986; 30: 25-30
- Eggli PS, Muller W, Schenk RK. Porous hydroxyapatite and tricalcium phosphate cylinders with two different pore size ranges implanted in the cancellous bone of rabbits. Clin Orthop Rel Res 1998; 232: 127-131
- Bucholz RW, Carlton A, Holmes RE. Hydroxyapatite and tricalcium phosphate bone graft substitutes. Orthop Clin North Am 1987; 18: 323-330
- Szabo G, Suba Z, Hrabak K, Barabas J, Nemeth Z. Autogenous bone versus beta-tricalcium phosphate graft alone for bilateral sinus elevations (2- and 3-dimensional computed tomographic, histologic, and histomorphometric evaluations): preliminary results. lnt J Oral Maxillofac Implants 2001; Sep-Oct ; 16(5): 681-692
- Szucs A, Suba Z, Martonffy K. et at. The importance of the pure-phase--tricalcium phosphate (Cerasorb) in preprosthetic surgery. Fogorv Szle 2000; 93: 45-52
- Graves DT, Kang YM,Kose NM. Growth factors in periodontal regeneration. Compendium Continuing Educ Dent 1994; 18: S672-677
- Lynch SE,Williams RC, Polson AM et al. A combination of platelet-derived and insulin like growth factors enhances periodontal regeneration. J Clin PeriodontoI 1989; 16: 545-548 https://doi.org/10.1111/j.1600-051X.1989.tb02334.x
- Lynch SE, de Castilla GR, Willams RC et at. The effects of short term application of a combination of platelet-derived and insulin-like growth factors on periodontal wound healing. J PeriodontoI 1991; 62: 458-467 https://doi.org/10.1902/jop.1991.62.7.458
- Giannobile WV, Finkelman RD, Lynch SE. Comparison of canine and non-human primate animal models for periodontal regenerative therapy: Results following a single administration of PDGF/IGF-I. J Periodontal 1994; 65: 1158-1168 https://doi.org/10.1902/jop.1994.65.12.1158
- Lee YM,Park YJ, Lee SJ et al. The bone regenerative of platelet-derived growth factor-BB delivered with a chitosan/tricalcium phophate sponge carrier. J PeriodontoI 2000; 71: 418-424 https://doi.org/10.1902/jop.2000.71.3.418
- Schallhom RG. Long term evaluation of osseous grafts in periodontal therapy. lnt Dent J 1980; 30: 101-104
- Lincks J, Boyan BD, Blanchard CR et al. Response of MG63 osteoblast like cells to titanium and titanium alloy is dependent on surface roughness and composition. Biomaterials 1998; 19: 2219-2232 https://doi.org/10.1016/S0142-9612(98)00144-6
- Malik MA, Puleo DA, Bizios R, Doremus RH. Osteoblasts on hydroxyapatite, alumina and bone surfaces in vitro: morphology during the first 2 h of attachment. Biomaterials 1992; 13: 123-128 https://doi.org/10.1016/0142-9612(92)90008-C
- Sugaya A, Minabe M, Hori T et al. Effects on wound healing of tricalcium phosphate-collagen complex implants in periodontal osseous defects in the dog. J Periodontal Res 1990; 25: 60-63 https://doi.org/10.1111/j.1600-0765.1990.tb01207.x
- Lin FH, Yao CH, Sun JS, Liu HC, Huang CW. Biological effects and cytotoxicity of the composite composed by tricalcium phosphate and glutaraldehyde cross-linked gelatin. Biomaterials 1998; 19: 905-917 https://doi.org/10.1016/S0142-9612(97)00202-0
- W.M. Saltzman, M.R. Parkhurst, P. Parsons Wingerter, W.H. Zhu, Three-dimensional cell cultures mimic tissues. Ann N Y Acad Sci. 1992; 665: 259-73
- Voumakis IN, Runstadler Jr. PW. Optimization of the microenvironment for mammalian cell culture in flexible collagen microsheres in a fluidized- bed bioreactor. Biotechnology 1991; 17: 305-326
- Matsuda N, Lin WL, Kumar M, Cho MI, Genco RJ. Mictogenic, chemotactic, and synthetic response of rat periodontal ligament cells to polypeptide growth factors in vitro. J PeriodontoI 1992; 63: 515-525 https://doi.org/10.1902/jop.1992.63.6.515
- Oates TW, Rouse CA, Cochran DL. Mitogenic effects of growth factors on human periodontal ligament cells in vitro. J PeriodontoI 1993; 64: 142-148 https://doi.org/10.1902/jop.1993.64.2.142
- Ripamonti D, Ma SS, Heever B, Reddi AH. Osteogenin, a bone morphogenetic protein, adsorbed on porous hydroxyapatite substrata, induces rapid bone differentiation in rat calvarial defects of adult primates. Plas Reconstr Surg 1992; 90: 382-393 https://doi.org/10.1097/00006534-199209000-00004
- Ziegler J, Mayr-Wohlfart D, Kessler S, Breitig D, Gnther KP. Adsorption and release properties of growth factors from biodegradable implants. J Biomed Mater Res 2002; 59: 422-428 https://doi.org/10.1002/jbm.1258
- Stephan EB, Renjen R, Lynch SE, Dziak R. Platelet-derived growth factor enhancement of a mineral-collagen bone substitute. J Periodontol 2000;: 1887-1892
- Lee JY, Nam SH, Im SY et al, Enhanced bone formation by controlled growth factor delivery from chitosan based biomaterials. J Control Release 2002; 78(1-3): 187-197