Compressive strength of calcium carbonate and hydroxyapatite implants after bone-marrow-induced osteogenesis

被引:74
作者
Vuola, J
Taurio, R
Göransson, H
Asko-Seljavaara, S
机构
[1] Univ Helsinki, Cent Hosp, Dept Plast Surg, Helsinki, Finland
[2] Tampere Univ Technol, Inst Plast Technol, FIN-33101 Tampere, Finland
[3] Orthopaed Hosp Invalid Fdn, ORTON, Helsinki, Finland
关键词
coral; hydroxyapatite; compressive strength and modulus; biodegradation;
D O I
10.1016/S0142-9612(97)00211-1
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Natural coral and structurally similar porous hydroxyapatite (HA) have been used as bone substitutes. They are not osteoinductive but bone formation can be induced by marrow cells, even in extraosseal sites. In our previous study we induced bone formation in porous coral and HA after having implanted the materials in intramuscular pockets in rat. New bone formed only in HA or coral implants soaked with marrow cells; fibrous tissue ingrowth alone was observed in the controls (without marrow). In the present study we examined the effect of tissue ingrowth on the mechanical properties of coral and HA implants obtained in a similar process to that used before. At 12 weeks the compressive strength of HA. was higher in the marrow group than in the controls; it was also higher than that of the wet unimplanted material. The HA blocks did not show resorption. Coral resorbed quickly and lost its compressive strength, which was originally higher than in HA. At three weeks the marrow group was stronger than the control specimens. After six weeks only the marrow group, but not the controls, could be tested. Bone ingrowth seemed to maintain the strength of the coral implant even if it was dissolving. The mechanical strength of both materials was comparable to that of cancellous bone. (C) 1998 Published by Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:223 / 227
页数:5
相关论文
共 25 条
[1]  
BUCHOLZ RW, 1987, ORTHOP CLIN N AM, V18, P323
[2]  
BUCHOLZ RW, 1989, CLIN ORTHOP RELAT R, P53
[3]   AUGMENTATION OF THE CRANIOFACIAL SKELETON WITH POROUS HYDROXYAPATITE GRANULES [J].
BYRD, HS ;
HOBAR, PC ;
SHEWMAKE, K .
PLASTIC AND RECONSTRUCTIVE SURGERY, 1993, 91 (01) :15-22
[4]   MECHANICAL-PROPERTIES OF CORAL SKELETON - COMPRESSIVE STRENGTH AND ITS ADAPTIVE SIGNIFICANCE [J].
CHAMBERLAIN, JA .
PALEOBIOLOGY, 1978, 4 (04) :419-435
[5]   TISSUE INGROWTH OF REPLAMINEFORM IMPLANTS [J].
CHIROFF, RT ;
WHITE, EW ;
WEBER, JN ;
ROY, DM .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1975, 9 (04) :29-45
[6]   Morphological and biomechanical difference in healing in segmental tibial defects implanted with Biocoral(R) or tricalcium phosphate cylinders [J].
Gao, TJ ;
Tuominen, TK ;
Lindholm, TS ;
Kommonen, B ;
Lindholm, TC .
BIOMATERIALS, 1997, 18 (03) :219-223
[7]   EXPERIMENTAL-MODEL OF POSTEROLATERAL SPINAL ARTHRODESIS IN SHEEP .2. APPLICATION OF THE MODEL - EVALUATION OF VERTEBRAL FUSION OBTAINED WITH CORAL (PORITES) OR WITH A BIPHASIC CERAMIC (TRIOSITE) [J].
GUIGUI, P ;
PLAIS, PY ;
FLAUTRE, B ;
VIGUIER, E ;
BLARY, MC ;
CHOPIN, D ;
LAVASTE, F ;
HARDOUIN, P .
SPINE, 1994, 19 (24) :2798-2803
[8]   COMPARISON OF CORAL RESORPTION AND BONE APPOSITION WITH 2 NATURAL CORALS OF DIFFERENT POROSITIES [J].
GUILLEMIN, G ;
MEUNIER, A ;
DALLANT, P ;
CHRISTEL, P ;
POULIQUEN, JC ;
SEDEL, L .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1989, 23 (07) :765-779
[9]   THE USE OF CORAL AS A BONE-GRAFT SUBSTITUTE [J].
GUILLEMIN, G ;
PATAT, JL ;
FOURNIE, J ;
CHETAIL, M .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1987, 21 (05) :557-567
[10]  
HOLMES R, 1984, CLIN ORTHOP