Peña Fernández Marta, Dall'Ara Enrico, Bodey Andrew J, Parwani Rachna, Barber Asa H, Blunn Gordon W, Tozzi Gianluca
Zeiss Global Centre, School of Mechanical and Design Engineering, University of Portsmouth, Anglesea Building, Anglesea Road, Portsmouth, PO1 3DJ, U.K.
Department of Oncology and Metabolism and INSIGNEO Institute for in silico Medicine, University of Sheffield, The Pam Liversidge Building, Sir Robert Hadfield Building, Mappin Street, Sheffield, S1 3JD, U.K.
ACS Biomater Sci Eng. 2019 May 13;5(5):2543-2554. doi: 10.1021/acsbiomaterials.8b01044. Epub 2019 Apr 23.
Osteoregenerative biomaterials for the treatment of bone defects are under much development, with the aim of favoring osteointegration up to complete bone regeneration. A detailed investigation of bone-biomaterial integration is vital to understand and predict the ability of such materials to promote bone formation, preventing further bone damage and supporting load-bearing regions. This study aims to characterize the micromechanics and microdamage evolution of bone-biomaterial systems at the tissue level, combining high-resolution synchrotron microcomputed tomography, mechanics and digital volume correlation. Results showed that the main microfailure events were localized close to or within the newly formed bone tissue, in proximity to the bone-biomaterial interface. The apparent nominal compressive load applied to the composite structures resulted in a complex loading scenario, mainly due to the higher heterogeneity but also to the different biomaterial degradation mechanisms. The full-field strain distribution allowed characterization of microdamage initiation and progression. The findings reported in this study provide a deeper insight into bone-biomaterial integration and micromechanics in relation to the osteoregeneration achieved for a variety of biomaterials. This could ultimately be used to improve bone tissue regeneration strategies.
用于治疗骨缺损的骨再生生物材料正处于大力研发阶段,目的是促进骨整合直至实现完全的骨再生。对骨与生物材料整合进行详细研究对于理解和预测此类材料促进骨形成、预防进一步骨损伤以及支撑承重区域的能力至关重要。本研究旨在结合高分辨率同步辐射显微计算机断层扫描、力学和数字体积相关技术,在组织水平上表征骨-生物材料系统的微观力学和微损伤演变。结果表明,主要的微失效事件发生在新形成的骨组织附近或内部,靠近骨-生物材料界面。施加于复合结构的表观名义压缩载荷导致了复杂的加载情况,这主要是由于更高的非均质性以及不同的生物材料降解机制。全场应变分布能够表征微损伤的起始和进展。本研究报告的结果为骨-生物材料整合以及与多种生物材料实现的骨再生相关的微观力学提供了更深入的见解。这最终可用于改进骨组织再生策略。