ГОСТ Р ИСО 13175-3-2015. Национальный стандарт Российской Федерации. Имплантаты для хирургии. Фосфаты кальция. Часть 3. Костные заменители на основе гидроксиапатита и бета-трикальций фосфата
БИБЛИОГРАФИЯ
[1] | ИСО 5961:1995, Качество воды. Определение содержания кадмия методом атомной абсорбционной спектрометрии |
[2] | ИСО 8288:1986, Качество воды. Определение содержания кобальта, никеля, меди, цинка, кадмия и свинца. Пламенные атомно-абсорбционные спектрометрические методы |
[3] | ИСО 13485:1996 <1> Системы качества. Медицинские изделия. Частные требования к применению стандарта ИСО 9001 |
[4] | ICDD cards 9-432, 9-348, 9-169, 25-1137, 37-1497, 9-80, 9-77, 14-1475, 5-586 X-ray diffraction standards for hydroxyapatite, |
[5] | ASTM F 1185: 2003, Standard Specification for Composition of Hydroxyapatite for Surgical Implants |
[6] | ASTM F 1088-04a, Standard Specification for Beta-Tricalcium Phosphate for Surgical Implantation |
[7] | European Pharmacopoeia 5.0: Tribasic calcium phosphate |
[8] | Daculsi G. et al. Spongious and Cortical bone substitution kinetics at the expense of the macroporous biphasic calcium phosphate: animal and human evidence. Bioceramics. 1999, 12 pp. 287 - 290 |
[9] | Ransford A.O. et. al. Synthetic porous ceramic compared with autograft in scoliosis surgery, The journal of Bone and Joint Surgery (Br), 80-B, n° 1, 1998, pp. 13 - 18 |
[10] | Daculsi G. et al. Current state of the art of biphasic calcium phosphate bioceramics. J. Mater. Sci. Mater. Med. 2003, 14 pp. 195 - 200 |
[11] | Ducheyne P. et al. The effect of calcium phosphate ceramic composition and structure on in vivo behaviour. I. Dissolution. J. Biomed. Mater. Res. 1993, 27 pp. 25 - 34 |
[12] | Daculsi G. et al. Transformation of biphasic calcium phosphate ceramics in vivo: Ultrastructural and physicochemical characterization. J. Biomed. Mater. Res. 1989, 23 pp. 883 - 894 |
[13] | Raynaud S. et al. Calcium phosphate apatities with variable Ca/P atomic ratio. III. Mechanicals properties and degradation in solution of hot pressed ceramics. Biomaterials, 23 (4) pp. 1081 - 1089 |
[14] | Gautier O. et al. Macroporous biphasic calcium phosphate ceramics: influence of macropore diameter and macroporosity percentage on bone ingrowth. Biomaterials. 1998, 19 pp. 133 - 139 |
[15] | Lu J.X. et al. Role of the interconnections in porous bioceramics on bone recolonization in vitro and in vivo. J. Mater. Sci. Mater. Med. 1999, 10 pp. 111 - 120 |
[16] | Liu D.-M. Influence of porous microarchitecture on the in vitro dissolution and biological behaviour of porous calcium phosphate ceramics. Mater. Sci. Forum. 1997, 250 pp. 183 - 208 |
[17] | Bignon A. Optimisation de la structure poreuse d'implants en phosphate de calcium pour application de comblement osseux et relargage in situ d'un principe actif, Thesis, 2002 |
[18] | Bignon A. et al. Effect of micro and macroporosity of bone substitutes on their mechanical properties and cellular response. J. Mater. Sci. Mater. Med. 2003, 14 pp. 1089 - 1097 |
[19] | USP Heavy metals <231> Method 1 |
--------------------------------
<1> Заменен ИСО 13485:2003.
