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Biomechanical Properties of a Novel Biodegradable Magnesium-Based Interference Screw

Magnesium-based interference screws may be an alternative in anterior/posterior cruciate ligament reconstruction. The well-known osteoconductive effects of biodegradable magnesium alloys may be useful. It was the purpose of this study to evaluate the biomechanical properties of a magnesium based int...

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Autores principales: Ezechieli, Marco, Meyer, Hanna, Lucas, Arne, Helmecke, Patrick, Becher, Christoph, Calliess, Tilman, Windhagen, Henning, Ettinger, Max
Formato: Online Artículo Texto
Lenguaje:English
Publicado: PAGEPress Publications, Pavia, Italy 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4933821/
https://www.ncbi.nlm.nih.gov/pubmed/27433303
http://dx.doi.org/10.4081/or.2016.6445
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author Ezechieli, Marco
Meyer, Hanna
Lucas, Arne
Helmecke, Patrick
Becher, Christoph
Calliess, Tilman
Windhagen, Henning
Ettinger, Max
author_facet Ezechieli, Marco
Meyer, Hanna
Lucas, Arne
Helmecke, Patrick
Becher, Christoph
Calliess, Tilman
Windhagen, Henning
Ettinger, Max
author_sort Ezechieli, Marco
collection PubMed
description Magnesium-based interference screws may be an alternative in anterior/posterior cruciate ligament reconstruction. The well-known osteoconductive effects of biodegradable magnesium alloys may be useful. It was the purpose of this study to evaluate the biomechanical properties of a magnesium based interference screw and compare it to a standard implant. A MgYREZr-alloy interference screw and a standard implant (Milagro®; De Puy Mitek, Raynham, MA, USA) were used for graft fixation. Specimens were placed into a tensile loading fixation of a servohydraulic testing machine. Biomechanical analysis included pretensioning of the constructs at 20 N for 1 min following cyclic pretensioning of 20 cycles between 20 and 60 N. Biomechanical elongation was evaluated with cyclic loading of 1000 cycles between 50 and 200 N at 0.5 Hz. Maximum load to failure was 511.3±66.5 N for the Milagro® screw and 529.0±63.3 N for magnesium-based screw (ns, P=0.57). Elongations after preload, during cyclical loading and during failure load were not different between the groups (ns, P>0.05). Stiffness was 121.1±13.8 N/mm for the magnesium-based screw and 144.1±18.4 for the Milagro® screw (ns, P=0.32). MgYREZr alloy interference screws show comparable results in biomechanical testing to standard implants and may be an alternative for anterior cruciate reconstruction in the future.
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spelling pubmed-49338212016-07-18 Biomechanical Properties of a Novel Biodegradable Magnesium-Based Interference Screw Ezechieli, Marco Meyer, Hanna Lucas, Arne Helmecke, Patrick Becher, Christoph Calliess, Tilman Windhagen, Henning Ettinger, Max Orthop Rev (Pavia) Article Magnesium-based interference screws may be an alternative in anterior/posterior cruciate ligament reconstruction. The well-known osteoconductive effects of biodegradable magnesium alloys may be useful. It was the purpose of this study to evaluate the biomechanical properties of a magnesium based interference screw and compare it to a standard implant. A MgYREZr-alloy interference screw and a standard implant (Milagro®; De Puy Mitek, Raynham, MA, USA) were used for graft fixation. Specimens were placed into a tensile loading fixation of a servohydraulic testing machine. Biomechanical analysis included pretensioning of the constructs at 20 N for 1 min following cyclic pretensioning of 20 cycles between 20 and 60 N. Biomechanical elongation was evaluated with cyclic loading of 1000 cycles between 50 and 200 N at 0.5 Hz. Maximum load to failure was 511.3±66.5 N for the Milagro® screw and 529.0±63.3 N for magnesium-based screw (ns, P=0.57). Elongations after preload, during cyclical loading and during failure load were not different between the groups (ns, P>0.05). Stiffness was 121.1±13.8 N/mm for the magnesium-based screw and 144.1±18.4 for the Milagro® screw (ns, P=0.32). MgYREZr alloy interference screws show comparable results in biomechanical testing to standard implants and may be an alternative for anterior cruciate reconstruction in the future. PAGEPress Publications, Pavia, Italy 2016-06-27 /pmc/articles/PMC4933821/ /pubmed/27433303 http://dx.doi.org/10.4081/or.2016.6445 Text en ©Copyright M. Ezechieli et al. http://creativecommons.org/licenses/by-nc/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Article
Ezechieli, Marco
Meyer, Hanna
Lucas, Arne
Helmecke, Patrick
Becher, Christoph
Calliess, Tilman
Windhagen, Henning
Ettinger, Max
Biomechanical Properties of a Novel Biodegradable Magnesium-Based Interference Screw
title Biomechanical Properties of a Novel Biodegradable Magnesium-Based Interference Screw
title_full Biomechanical Properties of a Novel Biodegradable Magnesium-Based Interference Screw
title_fullStr Biomechanical Properties of a Novel Biodegradable Magnesium-Based Interference Screw
title_full_unstemmed Biomechanical Properties of a Novel Biodegradable Magnesium-Based Interference Screw
title_short Biomechanical Properties of a Novel Biodegradable Magnesium-Based Interference Screw
title_sort biomechanical properties of a novel biodegradable magnesium-based interference screw
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4933821/
https://www.ncbi.nlm.nih.gov/pubmed/27433303
http://dx.doi.org/10.4081/or.2016.6445
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