Increasing reaming depth enhances implant stability while minimizing bone strain.

IF 4.7 2区 医学 Q2 CELL & TISSUE ENGINEERING
Monil Karia, Ruben Doyle, Adam Reynolds, Jonathan Jeffers, Justin Cobb
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Abstract

Aims: Increasing the interference fit of the acetabular component can increase primary stability, but it introduces excessive periacetabular strain during impaction, which can lead to fractures. An optimal outcome following cementless acetabular component impaction is maximal primary implant stability with minimal periacetabular bone strain. The aim of this study was to investigate whether a simple modification to a surgeon's reaming technique can achieve this desirable outcome.

Methods: A custom drop rig simulated impaction strikes, seating acetabular components of either 1 mm or 2 mm interference fit into synthetic sawbones with cavities reamed to either a true hemisphere or a hemisphere with an enhanced reaming depth of 2 mm or 4 mm. Synthetic bone strain was recorded using strain gauges, and push-out tests were conducted to assess implant stability. Polar gaps were measured using optimal trackers.

Results: Compared to a true hemispherical cavity, enhancing the reaming depth significantly increased the primary stability of the implant (p < 0.001) while reducing both the periacetabular strain and strain deterioration for both 1 mm and 2 mm interference fit components. A 4 mm reaming depth enhanced the primary stability of 1 mm press-fit components to a level almost equivalent to a 2 mm press-fit, albeit reducing strain to the bone. Enhancing reaming depth did not significantly affect polar gap.

Conclusion: Enhancing cavity reaming depth is a simple technique to increase the implant primary stability of press-fit uncemented acetabular components, while avoiding any excess in periacetabular strain and the associated fracture risk.

增加扩孔深度可以增强种植体的稳定性,同时最大限度地减少骨应变。
目的:增加髋臼假体的过盈配合可以增加初始稳定性,但在嵌塞过程中会导致髋臼周围过度应变,从而导致骨折。无骨水泥髋臼假体嵌塞后的最佳结果是最大的初级植入物稳定性和最小的髋臼周围骨应变。本研究的目的是探讨外科医生扩孔技术的简单修改是否可以达到理想的结果。方法:一个定制的跌落钻机模拟撞击,将1毫米或2毫米干涉的髋臼组件放入合成锯骨中,将腔孔扩至真正的半球形或增强的半球形,扩孔深度为2毫米或4毫米。使用应变计记录合成骨应变,并进行推出测试以评估植入物的稳定性。极差测量使用最优跟踪器。结果:与真正的半球形腔相比,增加扩孔深度显著增加了种植体的初级稳定性(p < 0.001),同时减少了1 mm和2 mm过盈配合部件的髋臼周围应变和应变恶化。4mm扩孔深度将1mm压合组件的初级稳定性提高到几乎相当于2mm压合组件的水平,尽管减少了对骨骼的应变。增大扩孔深度对极性间隙影响不显著。结论:增加空腔扩孔深度是提高加压配合非骨水泥髋臼假体种植体初级稳定性的简单方法,同时避免髋臼周围过度应变和相关骨折风险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Bone & Joint Research
Bone & Joint Research CELL & TISSUE ENGINEERING-ORTHOPEDICS
CiteScore
7.40
自引率
23.90%
发文量
156
审稿时长
12 weeks
期刊介绍: The gold open access journal for the musculoskeletal sciences. Included in PubMed and available in PubMed Central.
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