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Large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability

OBJECTIVES: Modular junctions are ubiquitous in contemporary hip arthroplasty. The head-trunnion junction is implicated in the failure of large diameter metal-on-metal (MoM) hips which are the currently the topic of one the largest legal actions in the history of orthopaedics (estimated costs are st...

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Autores principales: MacLeod, A. R., Sullivan, N. P. T., Whitehouse, M. R., Gill, H. S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2016
Materias:
Hip
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5013896/
https://www.ncbi.nlm.nih.gov/pubmed/27496914
http://dx.doi.org/10.1302/2046-3758.58.BJR-2016-0044.R1
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author MacLeod, A. R.
Sullivan, N. P. T.
Whitehouse, M. R.
Gill, H. S.
author_facet MacLeod, A. R.
Sullivan, N. P. T.
Whitehouse, M. R.
Gill, H. S.
author_sort MacLeod, A. R.
collection PubMed
description OBJECTIVES: Modular junctions are ubiquitous in contemporary hip arthroplasty. The head-trunnion junction is implicated in the failure of large diameter metal-on-metal (MoM) hips which are the currently the topic of one the largest legal actions in the history of orthopaedics (estimated costs are stated to exceed $4 billion). Several factors are known to influence the strength of these press-fit modular connections. However, the influence of different head sizes has not previously been investigated. The aim of the study was to establish whether the choice of head size influences the initial strength of the trunnion-head connection. MATERIALS AND METHODS: Ti-6Al-4V trunnions (n = 60) and two different sizes of cobalt-chromium (Co-Cr) heads (28 mm and 36 mm; 30 of each size) were used in the study. Three different levels of assembly force were considered: 4 kN; 5 kN; and 6 kN (n = 10 each). The strength of the press-fit connection was subsequently evaluated by measuring the pull-off force required to break the connection. The statistical differences in pull-off force were examined using a Kruskal–Wallis test and two-sample Mann–Whitney U test. Finite element and analytical models were developed to understand the reasons for the experimentally observed differences. RESULTS: 36 mm diameter heads had significantly lower pull-off forces than 28 mm heads when impacted at 4 kN and 5 kN (p < 0.001; p < 0.001), but not at 6 kN (p = 0.21). Mean pull-off forces at 4 kN and 5 kN impaction forces were approximately 20% larger for 28 mm heads compared with 36 mm heads. Finite element and analytical models demonstrate that the differences in pull-off strength can be explained by differences in structural rigidity and the resulting interface pressures. CONCLUSION: This is the first study to show that 36 mm Co-Cr heads have up to 20% lower pull-off connection strength compared with 28 mm heads for equivalent assembly forces. This effect is likely to play a role in the high failure rates of large diameter MoM hips. Cite this article: A. R. MacLeod, N. P. T. Sullivan, M. R. Whitehouse, H. S. Gill. Large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability. Bone Joint Res 2016;5:338–346. DOI: 10.1302/2046-3758.58.BJR-2016-0044.R1.
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spelling pubmed-50138962016-09-23 Large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability MacLeod, A. R. Sullivan, N. P. T. Whitehouse, M. R. Gill, H. S. Bone Joint Res Hip OBJECTIVES: Modular junctions are ubiquitous in contemporary hip arthroplasty. The head-trunnion junction is implicated in the failure of large diameter metal-on-metal (MoM) hips which are the currently the topic of one the largest legal actions in the history of orthopaedics (estimated costs are stated to exceed $4 billion). Several factors are known to influence the strength of these press-fit modular connections. However, the influence of different head sizes has not previously been investigated. The aim of the study was to establish whether the choice of head size influences the initial strength of the trunnion-head connection. MATERIALS AND METHODS: Ti-6Al-4V trunnions (n = 60) and two different sizes of cobalt-chromium (Co-Cr) heads (28 mm and 36 mm; 30 of each size) were used in the study. Three different levels of assembly force were considered: 4 kN; 5 kN; and 6 kN (n = 10 each). The strength of the press-fit connection was subsequently evaluated by measuring the pull-off force required to break the connection. The statistical differences in pull-off force were examined using a Kruskal–Wallis test and two-sample Mann–Whitney U test. Finite element and analytical models were developed to understand the reasons for the experimentally observed differences. RESULTS: 36 mm diameter heads had significantly lower pull-off forces than 28 mm heads when impacted at 4 kN and 5 kN (p < 0.001; p < 0.001), but not at 6 kN (p = 0.21). Mean pull-off forces at 4 kN and 5 kN impaction forces were approximately 20% larger for 28 mm heads compared with 36 mm heads. Finite element and analytical models demonstrate that the differences in pull-off strength can be explained by differences in structural rigidity and the resulting interface pressures. CONCLUSION: This is the first study to show that 36 mm Co-Cr heads have up to 20% lower pull-off connection strength compared with 28 mm heads for equivalent assembly forces. This effect is likely to play a role in the high failure rates of large diameter MoM hips. Cite this article: A. R. MacLeod, N. P. T. Sullivan, M. R. Whitehouse, H. S. Gill. Large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability. Bone Joint Res 2016;5:338–346. DOI: 10.1302/2046-3758.58.BJR-2016-0044.R1. 2016-08-31 /pmc/articles/PMC5013896/ /pubmed/27496914 http://dx.doi.org/10.1302/2046-3758.58.BJR-2016-0044.R1 Text en © 2016 MacLeod et al. This is an open-access article distributed under the terms of the Creative Commons Attributions licence (CC-BY-NC), which permits unrestricted use, distribution, and reproduction in any medium, but not for commercial gain, provided the original author and source are credited.
spellingShingle Hip
MacLeod, A. R.
Sullivan, N. P. T.
Whitehouse, M. R.
Gill, H. S.
Large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability
title Large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability
title_full Large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability
title_fullStr Large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability
title_full_unstemmed Large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability
title_short Large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability
title_sort large-diameter total hip arthroplasty modular heads require greater assembly forces for initial stability
topic Hip
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5013896/
https://www.ncbi.nlm.nih.gov/pubmed/27496914
http://dx.doi.org/10.1302/2046-3758.58.BJR-2016-0044.R1
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