Biocompatibility and osteogenesis of refractory metal implants, titanium, hafnium, niobium, tantalum and rhenium

Biomaterials - Tập 22 Số 11 - Trang 1253-1262 - 2001
Hironobu Matsuno1, Atsuro Yokoyama2, Fumio Watari3, Motohiro Uo3, Takao Ḱawasaki2
1Department of Removable Prosthetic Dentistry, School of Dentistry, Hokkaido University, Sapporo, Japan.
2Department of Removable Prosthetic Dentistry, School of Dentistry, Hokkaido University, North 13, West 7, Kita-ku, Sapporo 060-8586, Japan
3Department of Dental Materials and Engineering, School of Dentistry, Hokkaido University, North 13, West 7, Kita-ku, Sapporo 060-8586, Japan

Tóm tắt

Từ khóa


Tài liệu tham khảo

Kawahara, 1963, Biological test of dental materials, effect of pure metals upon the mouse subcutaneous fibroblast, strain L cell in tissue culture, Japan Soc Dent Appar Mater, 4, 65

Steinemann SG. Corrosion of surgical implants — in vivo and in vitro tests, evaluation of biomaterials. New York: Wiley, 1980. p. 1–34.

Kodama, 1989, Study on biocompatibility of titanium alloys, J Stomatol Soc Jpn, 51, 263, 10.5357/koubyou.56.263

Hamanaka, 1997, Metallic biomaterials — an introductory review, J Jpn Soc Biomater, 15, 223

Yumoto, 1992, Aluminium neurotoxicity in the rat brain, Int J PIXE, 2, 493, 10.1142/S0129083592000531

McLachlan, 1990, Aluminium, altered transcription, and the pathogenesis of Alzheimer's disease, Environ Geochem Health, 12, 103, 10.1007/BF01734059

Kaim W, Schwederski B. Bioinorganic chemistry: inorganic elements in the chemistry of life. New York: Wiley, 1991. p. 330–350.

Farrar, 1990, Defective gallium-transfer in binding in Alzheimer disease and Down syndrome, Lancet, 335, 747, 10.1016/0140-6736(90)90868-6

Jope RS, Johnson GVW. Aluminium in biology and medicine. New York: Wiley, 1992. p. 254–267.

Landsberg, 1992, Absence of aluminium in neurotic plaque cores in Alzheimer's disease, Nature, 360, 65, 10.1038/360065a0

Winship, 1992, Toxicity of aluminium, Adverse Drug React Toxicol Rev, 11, 123

Semlitsch, 1992, Joint replacement components made of hot-forged and surface-treated Ti–6Al–7Nb alloy, Biomaterials, 13, 781, 10.1016/0142-9612(92)90018-J

Semlitsch, 1985, Titanium–aluminium–niobium alloy, developments for biocompatible high strength surgical implants, Biomedizinische Technik, 30, 334, 10.1515/bmte.1985.30.12.334

Hamanaka, 1998, Corrosion resistance and mechanical properties of cast Ti–5Al–13Ta alloys, J Dent Mater (Special Issue 31), 17, 88

Goodman, 1993, Histological response to cylinders of a low modulus titanium alloy (Ti–13Nb–13Zr) and a wear resistant zirconium alloy (Zr–2.5Nb) implanted in the rabbit tibia, J Appl Biomater, 4, 331, 10.1002/jab.770040407

Zinovev VE. (translated by Endou K) Handbook of the physical properties of high melting temperature metals. Japan–Russia News Agency Ltd., 1986. p. 131–66 (in Japanese).

Matsumae, 1988, An experimental study of tantalum and zirconium as biomaterials, J Jpn Stomatol Soc, 37, 862

Fujita, 1993, In vitro study on biocompatibility of zirconium and titanium, J Stomatol Soc Jpn, 60, 54, 10.5357/koubyou.60.54

Watari, 1995, Functionally gradient dental implant composed of titanium and hydroxyapatite, 703

Watari, 1997, Fabrication and properties of functionally graded dental implant, Composite, Part B, 28B, 5, 10.1016/S1359-8368(96)00021-2

Uo, 1999, Dissolution of nickel and tissue response observed by X-ray analytical microscopy, Biomaterials, 20, 747, 10.1016/S0142-9612(98)00224-5