4.8 Article

Micromotion-induced strain fields influence early stages of repair at bone-implant interfaces

期刊

ACTA BIOMATERIALIA
卷 9, 期 5, 页码 6663-6674

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.actbio.2013.01.014

关键词

Bone; Implant; Interfacial strain; Loading; Micromotion

资金

  1. Canadian Institutes of Health Research
  2. NIH [7R01EB000504-07]
  3. Canadian Foundation for Innovation

向作者/读者索取更多资源

Implant loading can create micromotion at the bone-implant interface. The interfacial strain associated with implant micromotion could contribute to regulating the tissue healing response. Excessive micromotion can lead to fibrous encapsulation and implant loosening. Our objective was to characterize the influence of interfacial strain on bone regeneration around implants in mouse tibiae. A micromotion system was used to create strain under conditions of (1) no initial contact between implant and bone and (2) direct bone-implant contact. Pin- and screw-shaped implants were subjected to displacements of 150 or 300 mu m for 60 cycles per day for 7 days. Pin-shaped implants placed in five animals were subjected to three sessions of 150 mu m displacement per day, with 60 cycles per session. Control implants in both types of interfaces were stabilized throughout the healing period. Experimental strain analyses, microtomography, image-based displacement mapping, and finite element simulations were used to characterize interfacial strain fields. Calcified tissue sections were prepared and Goldner trichrome stained to evaluate the tissue reactions in higher and lower strain regions. In stable implants bone formation occurred consistently around the implants. In implants subjected to micromotion bone regeneration was disrupted in areas of high strain concentrations (e.g. >30%), whereas lower strain values were permissive of bone formation. Increasing implant displacement or number of cycles per day also changed the strain distribution and disturbed bone healing. These results indicate that not only implant micromotion but also the associated interfacial strain field contributes to regulating the interfacial mechanobiology at healing bone-implant interfaces. (C) 2013 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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