Biomedical Engineering Reference
In-Depth Information
31. Williams DF (ed) (1983) Biocompatibility of orthopaedic implant materials. CRC, Boca
Raton
32. Brown SA, Merritt K (1981) Fretting corrosion in saline and serum. J Biomed Mater Res
15:479-488
33. Hallab N, Merritt K, Jacobs JJ (2001) Metal sensitivity in patients with orthopaedic
implants. J Bone Joint Surg Am 83:428-436
34. Jonas L, Fulda G, Radeck R (2001) Biodegradation of titanium implants after long time
insertion used for the treatment of fractured upper and lower jaws through osteosynthesis:
elemental analysis by electron microscopy and EDX or EELS. Ultrastruct Pathol 25:
375-383
35. Murray CJL, Lopez AD (1996) The global burden of disease. World Health Organization,
Geneva
36. Moravej M, Purnama A, Fiset M, Couet J, Mantovani D (2010) Acta Biomater 6:1843-1851
37. Mueller PP, May T, Perz A, Hauser H, Peuster M (2006) Control of smooth muscle cell
proliferation by ferrous iron. Biomaterials 27:2193-2200
38. Lambotte
MA
(1932)
L'utilisation
du
magnesium
comme
materiel
perdu
dans
l'osteosynthèse. Societé nationale de chirurgie 1325-1334
39. Staiger M, Pietak A, Huadmai J, Dias G (2006) Magnesium and its alloys as orthopedic
biomaterials: a review. Biomaterials 27:1728-1734
40. Cardarelli F (2000) Less common non-ferrous metals. Materials handbook. Springer,
London, pp 99-107
41. Heublein B, Rohde R, Kaese V, Niemeyer M, HartungW, Haveric A (2003) Biocorrosion
of magnesium alloys: a new principle in cardiovascular implant technology? Heart 89:
651-656
42. Mani
G,
Feldman
MD,
Patel
D,
Agrawal
CM
(2007)
Coronary
stents:
a
materials
perspective. Biomaterials 28:1689-1710
43. Witte F, Kaese V, Haferkamp H, Switzer E, Meyer-Lindenberg A, Wirth CJ, Windhagen H
(2005) In vivo corrosion of four magnesium alloys and the associated bone response.
Biomaterials 26:3557-3563
44. Erne P, Schier M, Resink TJ (2006) The road to bioabsorbable stents: reaching clinical
reality. Cardiovasc Intervent Radiol 29:11-16
45. Gu X, Zheng Y, Cheng Y, Zhong S, Xi T (2009) In vitro corrosion and biocompatibility of
binary magnesium alloys. Biomaterials 30:484-498
46. Peuster M, Fink C, von Schnakenburg C, Hausdorf G (2002) Dissolution of tungsten coils
does not produce systemic toxicity, but leads to elevated levels of tungsten in the serum and
recanalization of the previously occluded vessel. Cardiol Young 12:229-235
47. Peuster M, Fink C, von Schnakenburg C (2003) Biocompatibility of corroding tungsten
coils:
in
vitro
assessment
of
degradation
kinetics
and
cytotoxicity
on
human
cells.
Biomaterials 24:4057-4061
48. Hench
LL,
Etheridge
EC
(1982)
Biomaterials:
an
interfacial
approach,
Academic,
New York
49. Davidge RW (1984) Structural degradation of ceramics. Biomaterials 5:37-41
50. Klein CP, Driessen AA, de Groot K, van den Hoof A (1983) Biodegradation behavior of
various calcium phosphate materials in bone tissue. J Biomed Mater Res 17:769-784
51. Klein CP, de Groot K, Driessen AA, van der Lubbe HB (1985) Interaction of biodegradable
beta-whitlockite ceramics with bone tissue: an in vivo study. Biomaterials 6:189-192
52. Winkler T, Hoenig E, Huber G, Janssen R, Fritsch D, Gildenhaar R, Berger G, Morlock MM,
Schilling AF (2010) Osteoclastic bioresorption of biomaterials: two- and three-dimensional
imaging and quantification. Int J Artif Organs 33:198-203
53. Winkler T, Hoenig E, Gildenhaar R, Berger G, Fritsch D, Janssen R, Morlock MM,
Schilling AF (2010) Volumetric analysis of osteoclastic bioresorption of calcium phosphate
ceramics with different solubilities. Acta Biomater 6:4127-4135
54. LeGeros RZ (1993) Biodegradation and bioresorption of calcium phosphate ceramics. Clin
Mater 14:65-88
Search WWH ::




Custom Search