Vet Comp Orthop Traumatol 2002; 15(03): 158-63
DOI: 10.1055/s-0038-1632731
Original Research
Schattauer GmbH

Critical size defect model on the femur in rabbits

M.-H. Crigel
1   Department of Small Animal Clinical Sciences, Surgery, Veterinary Faculty, University of Liege, Belgium
,
M. Balligand
1   Department of Small Animal Clinical Sciences, Surgery, Veterinary Faculty, University of Liege, Belgium
› Author Affiliations
The authors are indebted to the F.R.I.A (Fond pour la formation à la Recherche dans l’industrie et l’Agriculture) for providing the financial support and Professor A. Albert for statistical analysis.
Further Information

Publication History

Received 06 November 2001

Accepted 04 January 2002

Publication Date:
08 February 2018 (online)

Summary

The study purposed to elaborate a model of non-union to test a new biomaterial enhancing bone healing in large segmental defects. The authors’ concern was to develop a model of osteosynthesis capable of maintaining the stability of a femur that sustained a segmental defect. Also, they intended to determine the length of a defect that would create a nonunion. The madel was a 20-mm segmental bone defect coupled with an appropriate osteosynthesis in the rabbit femur. Two groups of rabbits underwent a mid-shaft ostectomy. Osteosynthesis was mode by two superposed holes 2-mm cuttable plates with cerclage wires. In one group, an additional intramedullary pin was inserted. The experiment lasted 16 weeks. The rabbits of the control group suffered fracture of the plates before the end of the experiment. The rabbits of the test group showed stability of the implants and nonunion of the defect. It was concluded that a mid-shaft segmental defect of 20 mm, coupled with an osteosynthesis combining plates, wires and intramedullary pin, is a valid critical size defect model in the rabbit femur.

 
  • References

  • 1 Baltzer AW, Lattermann C, Whalen JD. et al. A gene therapy approach to accelerating bone healing. Evaluation of gene expression in a New Zealand white rabbit model. Knee Surg Sport Traumatol Arthrose 1999; 07: 197-202.
  • 2 Beck LS, Wong RL, DeGuzman L. et al. Combination of bone marrow and TGF- β1 augment the healing of critical-sized bone defects. J Pharma Sciences 1998; 87: 1379-86.
  • 3 Bruder SP, Kraus KH, Goldberg VM. et al. The effect of implants loaded with autologous mesenchymal stem cells on the healing of canine segmental bone defects. J Bone Joint Surg 1998; 80-A: 985-96.
  • 4 Bruder SP, Jaiswal N, Ricalton NS. et al. Mesenchymal stem cells in osteobiology and applied bone regeneration. Clin Orthop 1998; 355S: S247-S256.
  • 5 Chakkalakal DA, Strates BS, Mashoof AA. et al. Repair of segmental bone defects in the rat: an experimental model of human fracture healing. Bone 1999; 25: 321-32.
  • 6 Cook SD, Baffes GC, Wolfe MW. et al. The effect of recombinant human osteogenic protein-1 on healing of large segmental bone defects. J Bone Joint Surg 1994; 76-A: 827-38.
  • 7 Cook SD, Salked SL, Brinker MR. et al. Use of an osteoinductive biomaterial (rhOP-1) in healing large segmental bone defects. J Orthop Trauma 1998; 12: 407-12.
  • 8 Cook SD. Preclinical and clinical evaluation of osteogenic protein-1 (BMP-7) in bony sites. Orthopedics 1999; 22: 669-71.
  • 9 Concannon MJ, Boschert MT, Puckett CL. Bone induction using demineralized bone in the rabbit femur: a long term study. Plast Reconstr Surg 1997; 99: 1983-8.
  • 10 Gugala Z, Gogolewski S. Regeneration of segmental diaphyseal defect in sheep tibiae using resorbable polymeric membranes: a preliminary study. J Orthop Trauma 1999; 13: 187-95.
  • 11 Hietaniemi K, Peltonen J, Paavolainen P. An experimental model for non-union in rats. Injury 1995; 26: 681-6.
  • 12 Hulse D, Hyman W, Nori M. et al. Reduction in plate strain by addition of an intramedullary pin. Vet Surg 1997; 26: 451-9.
  • 13 Hulse D, Ferry K, Fawcett A. et al. Effect of intramedullary pin size on reducing bone plate strain. Vet Comp Orthop Traumatol 2000; 13: 185-90.
  • 14 Inui K, Maeda M, Sano A. et al. Local application of basic fibroblast growth factor minipellet induces the healing of segmental bony defects in rabbits. Calcif Tissue Int 1998; 63: 490-5.
  • 15 Itoh T, Mochizuki M, Nishimura R. et al. Repair of ulnar segmental defect by recombinant human bone morphogenetic protein-2 in dogs. J Vet Med Sci 1998; 60: 451-8.
  • 16 Johnson KD, August A, Sciadini MF. et al. Evaluation of ground cortical autograft as a bone graft material in a new canine bilateral segmental long bone defect model. J Orthop Trauma 1996; 10: 28-36.
  • 17 Kaderly RE. Delayed union, nonunion, and malunion. In: Textbook of small animal surgery. Slatter HD. (ed). Philadelphia: Saunders; 1993: 1676-85.
  • 18 Kato T, Kawagushi H, Hanada K. et al. Single local injection of recombinant fibroblast growth factor-2 stimulates healing of segmental bone defects in rabbits. J Orthop Res 1998; 16: 654-9.
  • 19 Key JA. The effect of local calcium depot on osteogenesis and healing of fractures. J Bone Joint Surg 1934; 16-A: 176-84.
  • 20 Kiker-Head CA, Gerhart TN, Armstrong R. et al. Healing bone using recombinant human bone morphogenetic protein 2 and copolymer. Clin Orthop 1998; 349: 205-17.
  • 21 Kitsugi T, Yamamuro T, Kokubo T. Bonding behavior of a glass-ceramic containing apatite and wallastonite in segmental replacement of the rabbit tibia under load-bearing conditions. J Bone Joint Surg 1989; 71-A: 264-72.
  • 22 Kraus KH, Kadiyala S, Wotton H. et al. Critically sized osteo-periosteal femoral defects: a dog model. J Invest Surg 1999; 12: 115-24.
  • 23 Lieberman JR, Daluiski A, Stavenson S. et al. The effect of regional gene therapy with bone morphogenetic protein-2-producing bone-marrow cells on the repair of segmental femoral defect in rats. J Bone Joint Surg 1999; 81-A: 905-17.
  • 24 Mathon DH, Frayssinet P, Asimus E. et al. Development of a segmental long-bone defect model in sheep. Vet Comp Orthop Traumatol 1998; 11: 1-7.
  • 25 Moxham JP, Kibblewhite DJ, Dvorak M. et al. TGF- β1 forms functionally normal bone in a segmental sheep tibial diaphyseal defect. J Otolaryngol 1996; 25: 388-92.
  • 26 Niyibizi C, Baltzer A, Lattermann C. et al. Potential role for gene therapy in the enhancement of fracture healing. Clin Orthp 1998; 355 S: S148-S153.
  • 27 Nunamaker DM. Experimental models of fracture repair. Clin Orthop 1998; 355S: S56-S65.
  • 28 Okada Y, Kanawabe K, Fujita H. et al. Repair of segmental bone defects using bioactive bone cement: comparison with PMMA bone cement. J Biomed Mater Res 1999; 48: 689-96.
  • 29 Pardo AD. Influence of wire implants on bone healing. In: Textbook of small animal surgery. Slatter HD. (ed). Philadelphia: Saunders; 1993: 1634-5.
  • 30 Rhinelander FW, Wilson JW. Blood supply to the developing, mature and healing bone. In: Bone in clinical orthopedics. Sumner-Smith G. (ed). Philadelphia: Saunders; 1982: 81-158.
  • 31 Sciadini MF, Dawson JM, Johnson KD. Evaluation of bovine-derived bone protein with a natural coral carrier as a bone graft substitute in a canine segmental defect model. J Orthop res 1997; 15: 844-57.
  • 32 Sebecic B, Nikolic V, Sikiric P. et al. Osteogenic effect of gastric pentadecapeptide, BPC.-157, on the healing of segmental bone defect in rabbits: a comparison with bone marrow and autologous cortical bone implantation. Bone 1999; 24: 195-202.
  • 33 Teixeira JO, Urist MR. Bone morphogenetic protein induced repair of compartmentalized segmental diaphyseal defect. Arch Orthop Trauma Surg 1998; 117: 103-4.
  • 34 Toombs JP, Wallace LJ. Evaluation of autogeneic cortical chip grafting in a feline tibial non-union model. Am J Vet Res 1985; 46: 519-28.
  • 35 Toombs JP, Wallace LJ, Bjorling DE. et al. Evaluation of key’s hypothesis in the feline tibia: an experimental model for augmented bone healing studies. Am J Vet Res 1985; 46: 513-8.
  • 36 Volpon JB. Non-union using a canine model. Arch Trauma Surg 1997; 113: 312-7.
  • 37 Wippermann B, Donow C, Schratt HE. et al. The influence of hydroxyapatite granules on the healing of a segmental defect filled with autologous bone marrow. Ann Chir Gynaecol 1999; 88: 194-7.
  • 38 Wheeler DL, Chamberland DL, Schmitt JM. et al. Radiomorphometry and biomechanical assessment of recombinant human bone morphogenetic protein 2 and polymer in rabbit radius ostectomy model. J Biomed Mater Res 1998; 43: 365-3.
  • 39 Yuehuei H. General consideration of using animal models for orthopaedics research. Size defect on femur in rabbits Proceeding of the “Orthopaedics animal models; designing effective models to expedite human clinical trials”. CHI congress. Arlington, Virginia 1999; 28-9.
  • 40 Zegzula HD, Buck DC, Brekke J. et al. Bone formation with use of rhBMP-2. J Bone Joint Surg 1997; 79-A: 1778-90.