Finite element analysis of bone remodeling induced by swelling anchors considering heterogeneous properties.

IF 2.7 3区 医学 Q2 BIOPHYSICS
Amirreza Sadighi, Mehrangiz Taheri, Nolan Black, Jordan Stolle, Moein Taghvaei, Madeline Boyes, Sorin Siegler, Thomas P Schaer, Ahmad R Najafi
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Abstract

This study explored the biomechanical behavior of co-polymeric swelling bone anchors and their bone remodeling induction using finite element analysis of a model with heterogeneous properties. First, a hygro-elastic finite element framework was developed to capture the swelling of the bone anchors over time by moisture gain, validated against the data from free swelling experiments. Afterward, finite element models were developed using micro-CT data to capture heterogeneous material properties, and finally, bone remodeling induced by the swelling, acting as a mechanical stimulus, was investigated. The study examined three co-polymeric ratios of methyl methacrylate and acrylic acid (MMA/AA)-80/20, 85/15, and 90/10-and assessed the impact of their associated swelling ratios on bone remodeling and fixation strength. Moreover, in parallel with the numerical investigations, an in vivo study using a sheep model was conducted to evaluate the biocompatibility of these anchors and bone remodeling response to the swelling. The numerical findings highlighted the importance of optimizing swelling ratios to enhance mechanical engagement without causing adverse resorption. More specifically, the results demonstrated that bone regeneration in the region of interest is highly sensitive to the swelling ratio. When the swelling is maintained within an optimal range-such as in the 85/15 composition-favorable densification occurs at the bone-implant interface, enhancing osteointegration. In contrast, excessive swelling (e.g., the 80/20 composition) induces localized overload resorption due to elevated stress concentrations at the interface, which may compromise implant success. Additionally, correlations found between the numerical and in vivo study outcomes supported the notion of an optimal swelling threshold and confirmed the predictive capabilities of the developed hygro-elastic finite element framework. To underscore the importance of favorable bone remodeling in the interface, a push-out study was performed to analyze the fixation strength prior and subsequent to bone remodeling. The significant difference in push-out forces before and after remodeling demonstrates that bone densification at the interface can substantially enhance fixation strength.

考虑非均质性的膨胀锚诱导骨重塑的有限元分析。
本研究通过异质模型的有限元分析,探讨了共聚膨胀骨锚的生物力学行为及其骨重塑诱导。首先,开发了一个水弹性有限元框架,通过水分增加来捕捉骨锚随时间的膨胀,并根据自由膨胀实验的数据进行验证。随后,利用micro-CT数据建立有限元模型来捕捉异质材料的特性,最后,研究由肿胀引起的骨重塑,作为一种机械刺激。该研究检测了甲基丙烯酸甲酯和丙烯酸的三种共聚物比例(MMA/AA)——80/20、85/15和90/10,并评估了它们相关的肿胀比例对骨重塑和固定强度的影响。此外,在进行数值研究的同时,还使用绵羊模型进行了一项体内研究,以评估这些锚的生物相容性和骨重塑对肿胀的反应。数值结果强调了优化膨胀比以增强机械接合而不引起不良吸收的重要性。更具体地说,结果表明,骨再生的兴趣区域是高度敏感的膨胀比。当肿胀保持在最佳范围内(例如85/15组合物)时,骨-种植体界面会发生有利的致密化,从而增强骨整合。相反,过度膨胀(例如,80/20比例)由于界面处应力浓度升高导致局部超载吸收,这可能会影响种植成功。此外,数值和体内研究结果之间的相关性支持了最佳膨胀阈值的概念,并证实了所开发的水弹性有限元框架的预测能力。为了强调界面中良好骨重塑的重要性,我们进行了一项推出研究来分析骨重塑之前和之后的固定强度。重构前后推出力的显著差异表明,界面处的骨密度可以显著提高固定强度。
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来源期刊
Biomechanics and Modeling in Mechanobiology
Biomechanics and Modeling in Mechanobiology 工程技术-工程:生物医学
CiteScore
7.10
自引率
8.60%
发文量
119
审稿时长
6 months
期刊介绍: Mechanics regulates biological processes at the molecular, cellular, tissue, organ, and organism levels. A goal of this journal is to promote basic and applied research that integrates the expanding knowledge-bases in the allied fields of biomechanics and mechanobiology. Approaches may be experimental, theoretical, or computational; they may address phenomena at the nano, micro, or macrolevels. Of particular interest are investigations that (1) quantify the mechanical environment in which cells and matrix function in health, disease, or injury, (2) identify and quantify mechanosensitive responses and their mechanisms, (3) detail inter-relations between mechanics and biological processes such as growth, remodeling, adaptation, and repair, and (4) report discoveries that advance therapeutic and diagnostic procedures. Especially encouraged are analytical and computational models based on solid mechanics, fluid mechanics, or thermomechanics, and their interactions; also encouraged are reports of new experimental methods that expand measurement capabilities and new mathematical methods that facilitate analysis.
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