Rat model of an autologous cancellous bone graft

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作者
Tomo Hamada
Hidenori Matsubara
Toshifumi Hikichi
Kanu Shimokawa
Hiroyuki Tsuchiya
机构
[1] Kanazawa University,Department of Orthopedic Surgery, Graduate School of Medical Science
来源
Scientific Reports | / 11卷
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摘要
Autologous cancellous bone (ACB) grafting is the “gold standard” treatment for delayed bone union. However, small animal models for such grafts are lacking. Here, we developed an ACB graft rat model. Anatomical information regarding the iliac structure was recorded from five rat cadavers (10 ilia). Additionally, 5 and 25 rats were used as controls and ACB graft models, respectively. A defect was created in rat femurs and filled with ACB. Post-graft neo-osteogenic potential was assessed by radiographic evaluation and histological analysis. Iliac bone harvesting yielded the maximum amount of cancellous bone with minimal invasiveness, considering the position of parailiac nerves and vessels. The mean volume of cancellous bone per rat separated from the cortical bone was 73.8 ± 5.5 mm3. Bone union was evident in all ACB graft groups at 8 weeks, and new bone volume significantly increased every 2 weeks (P < 0.001). Histological analysis demonstrated the ability of ACB grafts to act as a scaffold and promote bone union in the defect. In conclusion, we established a stable rat model of ACB grafts by harvesting the iliac bone. This model can aid in investigating ACB grafts and development of novel therapies for bone injury.
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  • [1] Giannoudis PV(2005)Bone substitutes: An update Injury 36 S20-S27
  • [2] Dinopoulos H(2003)Norian SRS cement compared with conventional fixation in distal radial fractures. A randomized study J. Bone Jt. Surg. Am. 85 2127-2137
  • [3] Tsiridis E(2002)Bone-grafting and bone-graft substitutes J. Bone Jt. Surg. Am. 84 454-464
  • [4] Cassidy C(2001)The use of a surgical grade calcium sulfate as a bone graft substitute: Results of a multicenter trial Clin. Orthop. Relat. Res. 382 42-50
  • [5] Finkemeier CG(2005)The biology of bone grafting J. Am. Acad. Orthop. Surg. 13 77-86
  • [6] Kelly CM(1972)Vascularization of bone grafts and implants Clin. Orthop. Relat. Res. 87 43-48
  • [7] Khan SN(2017)Repair of bone defects using adipose-derived stem cells combined with alpha-tricalcium phosphate and gelatin sponge scaffolds in a rat model J. Appl. Oral Sci. 25 10-19
  • [8] Ray RD(2016)Bone defect regeneration by a combination of a β-tricalcium phosphate scaffold and bone marrow stromal cells in a non-human primate model Open Biomed. Eng. J. 10 2-11
  • [9] Corsetti A(2007)Quantitative assessment of scaffold and growth factor-mediated repair of critically sized bone defects J. Orthop. Res. 25 941-950
  • [10] Masaoka T(1997)Bone autografts and allografts in dogs Comp. Vet. Cont. Ed. 19 558-575