Impact of periprosthetic femoral fracture fixation plating constructs on local stiffness, load transfer, and bone strains

IF 3.5 2区 医学 Q2 ENGINEERING, BIOMEDICAL
Xiang Chen , Thor E. Andreassen , Casey A. Myers , Chadd W. Clary , Dana Coombs , Ryan J. DeWall , Bryan Fritz , Daniel N. Bracey , Vishal Hedge , Paul J. Rullkoetter
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引用次数: 1

Abstract

Secondary femoral fractures after the successful plate-screw fixation of a primary Vancouver type B1 periprosthetic femoral fracture (PFF) have been associated with the altered state of stress/strain in the femur as the result of plating. The laterally implanted condyle-spanning plate-screw constructs have shown promises clinically in avoiding secondary bone and implant failures as compared with shorter diaphyseal plates. Though the condyle-spanning plating has been hypothesized to avoid stress concentration in the femoral diaphysis through increasing the working length of the plate, biomechanical evidence is lacking on how plate length may impact the stress/strain state of the implanted femur. Through developing and experimentally validating finite element (FE) models of 3 cadaveric femurs, this study investigated the impact of plating on bone strains, load transfer and local stiffness, which were compared between FE models of 2 different plating systems that each had a diaphyseal configuration and a condyle-spanning configuration. Under simulated gait-loading, the condyle-spanning constructs of both plating systems were shown to lower the bone strains around the distal fixation screws (up to 24.8% reduction in maximum principal strain and 26.6% reduction in minimum principal strain) and in the distal metaphyseal shaft of the femur (up to 15.9% and 25.7% reductions in maximum and minimum principal strains, respectively), where secondary bone fractures have been typically reported. In the distal diaphyseal and metaphyseal shaft of femur, FE models of the condyle-spanning constructs were shown to increase the local compressive stiffness (up to 152.9% increases under simulated gait-loading) and decrease the transfer of compressive load (37.1% decreases under simulated gait-loading), which may be indicative of the lowered risks of bone damage.

股骨假体周围骨折固定钢板对局部刚度、载荷传递和骨应变的影响
原发性温哥华B1型假体周围股骨骨折(PFF)钢板螺钉固定成功后继发股骨骨折与钢板导致股骨应力/应变状态的改变有关。与较短的骨干钢板相比,外侧植入跨越髁的钢板-螺钉结构在临床中显示出避免继发性骨和种植体失败的希望。虽然假设跨越髁的钢板可以通过增加钢板的工作长度来避免股骨骨干的应力集中,但关于钢板长度如何影响植入股骨的应力/应变状态,生物力学证据缺乏。本研究通过建立和实验验证3具尸体股骨的有限元模型,研究了钢板对骨应变、载荷传递和局部刚度的影响,并比较了两种不同钢板系统(骨干结构和髁突跨越结构)的有限元模型。在模拟步态负荷下,两种钢板系统的髁突跨结构被证明可以降低远端固定螺钉周围的骨应变(最大主应变减少24.8%,最小主应变减少26.6%)和股骨远端干骺端干周围的骨应变(最大和最小主应变分别减少15.9%和25.7%),这是继发性骨折的典型报道。在股骨远端干骺端和干骺端,髁突跨越结构的有限元模型显示增加了局部压缩刚度(模拟步态加载下增加了152.9%),减少了压缩载荷的转移(模拟步态加载下减少了37.1%),这可能表明骨损伤的风险降低。
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来源期刊
Journal of the Mechanical Behavior of Biomedical Materials
Journal of the Mechanical Behavior of Biomedical Materials 工程技术-材料科学:生物材料
CiteScore
7.20
自引率
7.70%
发文量
505
审稿时长
46 days
期刊介绍: The Journal of the Mechanical Behavior of Biomedical Materials is concerned with the mechanical deformation, damage and failure under applied forces, of biological material (at the tissue, cellular and molecular levels) and of biomaterials, i.e. those materials which are designed to mimic or replace biological materials. The primary focus of the journal is the synthesis of materials science, biology, and medical and dental science. Reports of fundamental scientific investigations are welcome, as are articles concerned with the practical application of materials in medical devices. Both experimental and theoretical work is of interest; theoretical papers will normally include comparison of predictions with experimental data, though we recognize that this may not always be appropriate. The journal also publishes technical notes concerned with emerging experimental or theoretical techniques, letters to the editor and, by invitation, review articles and papers describing existing techniques for the benefit of an interdisciplinary readership.
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