Nanostructural origins of irreversible deformation in bone revealed by an in situ atomic force microscopy study

被引:0
作者
Tianbao Qian
Lijing Teng
Yongji Zhou
Minghao Zhang
Zuquan Hu
Xiaofeng Chen
Fei Hang
机构
[1] Guizhou Medical University,School of Biology & Engineering
[2] South China University of Technology,School of Medicine
[3] South China University of Technology,School of Materials Science and Engineering
[4] South China University of Technology,National Engineering Research Center for Tissue Restoration and Reconstruction
[5] South China University of Technology,Key Laboratory of Biomedical Engineering of Guangdong Province
[6] South China University of Technology,Key Laboratory of Biomedical Materials and Engineering of the Ministry of Education
[7] South China University of Technology,Innovation Center for Tissue Restoration and Reconstruction
关键词
cortical bone; atomic force microscopy; plastic deformation; mineralized collagen fibril; interfibrillar slipping;
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中图分类号
学科分类号
摘要
The structural origins of bone toughness at the nanoscale are not completely understood. Therefore, we performed in situ scanning using atomic force microscopy during macroscopic mechanical testing of antler and bovine bone, to reveal the origins of the irreversible plastic deformation at the mineralized collagen fibril (MCF) array and MCF levels. We found that the plastic deformation behavior at the nanoscale level could be divided into two stages. The first stage of plastic deformation at the nanoscale level was characterized by slippage between the MCF arrays, which contained mineral aggregate grains with regular shapes under load. In the second stage of nanoscale plastic deformation, the MCFs broke through the bonds of the extrafibrillar mineral aggregate grains and exhibited interfibrillar slippage. These nanoscale plastic deformation behaviors may thus be the origins of stress whitening and irreversible plastic deformation. Thus, the findings in this study not only shed light on the plastic deformation mechanisms of MCF arrays and MCFs, but also provide structural and mechanistic insights into bioinspired materials design and mechanisms of relevant bone diseases.
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页码:7329 / 7341
页数:12
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