Assessment of bovine cortical bone fracture behavior using impact microindentation as a surrogate of fracture toughness

Author:

Jahani Babak1,Vaidya Rachana1ORCID,Jin James M1,Aboytes Donald A1,Broz Kaitlyn S12,Krothapalli Siva3,Pujari Bhanuteja3,Baig Walee M4,Tang Simon Y125ORCID

Affiliation:

1. Department of Orthopaedic Surgery, Washington University in St. Louis , St. Louis, MO 63110 , United States

2. Department of Mechanical Engineering and Materials Science, Washington University in St. Louis , St. Louis, MO 63110 , United States

3. School of Medicine, St Louis University , MO 63104 , United States

4. Department of Biology and Environmental Health, Missouri Southern State University , Joplin, MO 64801 , United States

5. Department of Biomedical Engineering, Washington University in St. Louis , St. Louis, MO 63130 , United States

Abstract

Abstract The fracture behavior of bone is critically important for evaluating its mechanical competence and ability to resist fractures. Fracture toughness is an intrinsic material property that quantifies a material’s ability to withstand crack propagation under controlled conditions. However, properly conducting fracture toughness testing requires the access to calibrated mechanical load frames and the destructive testing of bone samples, and therefore fracture toughness tests are clinically impractical. Impact microindentation mimicks certain aspects of fracture toughness measurements, but its relationship with fracture toughness remains unknown. In this study, we aimed to compare measurements of notched fracture toughness and impact microindentation in fresh and boiled bovine bone. Skeletally mature bovine bone specimens (n = 48) were prepared, and half of them were boiled to denature the organic matrix, while the other half remained preserved in frozen conditions. All samples underwent a notched fracture toughness test to determine their resistance to crack initiation (KIC) and an impact microindentation test using the OsteoProbe to obtain the Bone Material Strength index (BMSi). Boiling the bone samples increased the denatured collagen content, while mineral density and porosity remained unaffected. The boiled bones also showed significant reduction in both KIC (P < .0001) and the average BMSi (P < .0001), leading to impaired resistance of bone to crack propagation. Remarkably, the average BMSi exhibited a high correlation with KIC (r = 0.86; P < .001). A ranked order difference analysis confirmed the excellent agreement between the 2 measures. This study provides the first evidence that impact microindentation could serve as a surrogate measure for bone fracture behavior. The potential of impact microindentation to assess bone fracture resistance with minimal sample disruption could offer valuable insights into bone health without the need for cumbersome testing equipment and sample destruction.

Funder

National Institutes of Health

Publisher

Oxford University Press (OUP)

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1. Cellular mechanisms of age-dependent bone remodeling;Kazan medical journal;2024-07-25

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