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Exploratory Full-Field Strain Analysis of Regenerated Bone Tissue from Osteoinductive Biomaterials

机译:探索性全场应变分析成骨诱导生物材料的骨组织。

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摘要

Biomaterials for bone regeneration are constantly under development, and their application in critical-sized defects represents a promising alternative to bone grafting techniques. However, the ability of all these materials to produce bone mechanically comparable with the native tissue remains unclear. This study aims to explore the full-field strain evolution in newly formed bone tissue produced in vivo by different osteoinductive strategies, including delivery systems for BMP-2 release. In situ high-resolution X-ray micro-computed tomography (microCT) and digital volume correlation (DVC) were used to qualitatively assess the micromechanics of regenerated bone tissue. Local strain in the tissue was evaluated in relation to the different bone morphometry and mineralization for specimens ( = 2 p/treatment) retrieved at a single time point (10 weeks in vivo). Results indicated a variety of load-transfer ability for the different treatments, highlighting the mechanical adaptation of bone structure in the early stages of bone healing. Although exploratory due to the limited sample size, the findings and analysis reported herein suggest how the combination of microCT and DVC can provide enhanced understanding of the micromechanics of newly formed bone produced in vivo, with the potential to inform further development of novel bone regeneration approaches.
机译:用于骨再生的生物材料正在不断开发中,并且它们在临界尺寸缺损中的应用代表了骨移植技术的有希望的替代方法。然而,所有这些材料产生与天然组织机械可比的骨骼的能力仍不清楚。这项研究的目的是探索通过不同的骨诱导策略(包括释放BMP-2的递送系统)在体内产生的新形成的骨组织中的全场应变演变。原位高分辨率X射线计算机断层扫描(microCT)和数字体积相关性(DVC)用于定性评估再生骨组织的微力学。对于在单个时间点(体内10周)取回的标本(= 2 p /处理),针对不同的骨形态和矿化程度评估了组织中的局部应变。结果表明,不同治疗方法具有多种负荷转移能力,突出了骨愈合早期阶段骨骼结构的机械适应性。尽管由于样本量有限而进行了探索性研究,但本文报道的发现和分析表明,microCT和DVC的组合如何可以增强对体内新形成的骨的微力学的理解,并有可能为新型骨再生方法的进一步发展提供参考。

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