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用于骨干骨折固定的机械顺应性锁定钢板:一项生物力学研究。

Mechanically compliant locking plates for diaphyseal fracture fixation: A biomechanical study.

作者信息

Huxman Connor, Lewis Gregory, Armstrong April, Updegrove Gary, Koroneos Zachary, Butler Jared

机构信息

Department of Mechanical Engineering, The Pennsylvania State University, University Park, Pennsylvania, USA.

Department of Orthopaedics and Rehabilitation, Penn State Milton S. Hershey Medical Center, Hershey, Pennsylvania, USA.

出版信息

J Orthop Res. 2025 Jan;43(1):217-227. doi: 10.1002/jor.25968. Epub 2024 Sep 15.

Abstract

Axial micromotion between bone fragments can stimulate callus formation and fracture healing. In this study, we propose a novel mechanically compliant locking plate which achieves up to 0.6 mm of interfragmentary motion as flexures machined into the plate elastically deflect under physiological load. We investigated the biomechanical performance of three compliant plate variations in comparison to rigid control plates with small and large working lengths in a comminuted bridge plating scenario using humeral diaphysis surrogates. Under static axial loading, average interfragmentary motion was 6 times larger at 100 N (0.38 vs. 0.05 mm) and nearly three times larger at 350 N (0.58 vs. 0.2 mm) for compliant plates than rigid plates, respectively. Compliant plates delivered between 2.5 and 3.4 times more symmetric interfragmentary motion than rigid plates (p < 0.01). The bi-phasic stiffness of compliant pates provided 74%-96% lower initial axial stiffness up to approximately 100 N (p < 0.01), after which compliant plate stiffness was similar to rigid plates with increased working length (p > 0.3). The strength to failure of compliant plates under dynamic loading was on average 48%-55% lower than rigid plate groups (p < 0.01); however, all plates survived cyclic fatigue loading of 100,000 cycles at 350 N. This work characterizes the improvement in interfragmentary motion and the reduction in strength to failure of compliant plates compared to control rigid plates. Compliant plates may offer potential in comminuted fracture healing due to their ability to deliver symmetric interfragmentary motion into the range known to stimulate callus formation while surviving moderate fatigue loading with no signs of failure.

摘要

骨碎片之间的轴向微动可刺激骨痂形成和骨折愈合。在本研究中,我们提出了一种新型的机械柔顺锁定钢板,当加工在钢板上的挠曲在生理载荷下发生弹性变形时,该钢板可实现高达0.6毫米的骨折块间运动。我们使用肱骨干替代物,在粉碎性桥接钢板固定的情况下,研究了三种柔顺钢板变体与不同工作长度的刚性对照钢板相比的生物力学性能。在静态轴向载荷下,对于柔顺钢板,在100牛(0.38对0.05毫米)时平均骨折块间运动比刚性钢板大6倍,在350牛(0.58对0.2毫米)时大近3倍。柔顺钢板产生的骨折块间运动对称性比刚性钢板高2.5至3.4倍(p<0.01)。柔顺钢板的双相刚度在高达约100牛时提供的初始轴向刚度低74%-96%(p<0.01),在此之后,柔顺钢板的刚度与工作长度增加的刚性钢板相似(p>0.3)。在动态载荷下,柔顺钢板的破坏强度平均比刚性钢板组低48%-55%(p<0.01);然而,所有钢板在350牛的100,000次循环疲劳载荷下均存活。这项工作描述了与对照刚性钢板相比,柔顺钢板在骨折块间运动方面的改善以及破坏强度的降低。柔顺钢板可能在粉碎性骨折愈合中具有潜力,因为它们能够将对称的骨折块间运动传递到已知可刺激骨痂形成的范围内,同时在承受中等疲劳载荷时无破坏迹象。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e4c3/11615426/1f168af9ed79/JOR-43-217-g008.jpg

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