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Three-Dimensional Printed Porous Titanium Screw with Bioactive Surface Modification for Bone–Tendon Healing: A Rabbit Animal Model

The interference screw fixation method is used to secure a graft in the tibial tunnel during anterior cruciate ligament reconstruction surgery. However, several complications have been reported, such as biodegradable screw breakage, inflammatory or foreign body reaction, tunnel enlargement, and dela...

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Autores principales: Huang, Yu-Min, Huang, Chih-Chieh, Tsai, Pei-I, Yang, Kuo-Yi, Huang, Shin-I, Shen, Hsin-Hsin, Lai, Hong-Jen, Huang, Shu-Wei, Chen, San-Yuan, Lin, Feng-Huei, Chen, Chih-Yu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7279243/
https://www.ncbi.nlm.nih.gov/pubmed/32455543
http://dx.doi.org/10.3390/ijms21103628
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author Huang, Yu-Min
Huang, Chih-Chieh
Tsai, Pei-I
Yang, Kuo-Yi
Huang, Shin-I
Shen, Hsin-Hsin
Lai, Hong-Jen
Huang, Shu-Wei
Chen, San-Yuan
Lin, Feng-Huei
Chen, Chih-Yu
author_facet Huang, Yu-Min
Huang, Chih-Chieh
Tsai, Pei-I
Yang, Kuo-Yi
Huang, Shin-I
Shen, Hsin-Hsin
Lai, Hong-Jen
Huang, Shu-Wei
Chen, San-Yuan
Lin, Feng-Huei
Chen, Chih-Yu
author_sort Huang, Yu-Min
collection PubMed
description The interference screw fixation method is used to secure a graft in the tibial tunnel during anterior cruciate ligament reconstruction surgery. However, several complications have been reported, such as biodegradable screw breakage, inflammatory or foreign body reaction, tunnel enlargement, and delayed graft healing. Using additive manufacturing (AM) technology, we developed a titanium alloy (Ti(6)Al(4)V) interference screw with chemically calcium phosphate surface modification technology to improve bone integration in the tibial tunnel. After chemical and heat treatment, the titanium screw formed a dense apatite layer on the metal surface in simulated body fluid. Twenty-seven New Zealand white rabbits were randomly divided into control and additive manufactured (AMD) screw groups. The long digital extensor tendon was detached and translated into a tibial plateau tunnel (diameter: 2.0 mm) and transfixed with an interference screw while the paw was in dorsiflexion. Biomechanical analyses, histological analyses, and an imaging study were performed at 1, 3, and 6 months. The biomechanical test showed that the ultimate pull-out load failure was significantly higher in the AMD screw group in all tested periods. Micro-computed tomography analyses revealed early woven bone formation in the AMD screw group at 1 and 3 months. In conclusion, AMD screws with bioactive surface modification improved bone ingrowth and enhanced biomechanical performance in a rabbit model.
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spelling pubmed-72792432020-06-15 Three-Dimensional Printed Porous Titanium Screw with Bioactive Surface Modification for Bone–Tendon Healing: A Rabbit Animal Model Huang, Yu-Min Huang, Chih-Chieh Tsai, Pei-I Yang, Kuo-Yi Huang, Shin-I Shen, Hsin-Hsin Lai, Hong-Jen Huang, Shu-Wei Chen, San-Yuan Lin, Feng-Huei Chen, Chih-Yu Int J Mol Sci Article The interference screw fixation method is used to secure a graft in the tibial tunnel during anterior cruciate ligament reconstruction surgery. However, several complications have been reported, such as biodegradable screw breakage, inflammatory or foreign body reaction, tunnel enlargement, and delayed graft healing. Using additive manufacturing (AM) technology, we developed a titanium alloy (Ti(6)Al(4)V) interference screw with chemically calcium phosphate surface modification technology to improve bone integration in the tibial tunnel. After chemical and heat treatment, the titanium screw formed a dense apatite layer on the metal surface in simulated body fluid. Twenty-seven New Zealand white rabbits were randomly divided into control and additive manufactured (AMD) screw groups. The long digital extensor tendon was detached and translated into a tibial plateau tunnel (diameter: 2.0 mm) and transfixed with an interference screw while the paw was in dorsiflexion. Biomechanical analyses, histological analyses, and an imaging study were performed at 1, 3, and 6 months. The biomechanical test showed that the ultimate pull-out load failure was significantly higher in the AMD screw group in all tested periods. Micro-computed tomography analyses revealed early woven bone formation in the AMD screw group at 1 and 3 months. In conclusion, AMD screws with bioactive surface modification improved bone ingrowth and enhanced biomechanical performance in a rabbit model. MDPI 2020-05-21 /pmc/articles/PMC7279243/ /pubmed/32455543 http://dx.doi.org/10.3390/ijms21103628 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Huang, Yu-Min
Huang, Chih-Chieh
Tsai, Pei-I
Yang, Kuo-Yi
Huang, Shin-I
Shen, Hsin-Hsin
Lai, Hong-Jen
Huang, Shu-Wei
Chen, San-Yuan
Lin, Feng-Huei
Chen, Chih-Yu
Three-Dimensional Printed Porous Titanium Screw with Bioactive Surface Modification for Bone–Tendon Healing: A Rabbit Animal Model
title Three-Dimensional Printed Porous Titanium Screw with Bioactive Surface Modification for Bone–Tendon Healing: A Rabbit Animal Model
title_full Three-Dimensional Printed Porous Titanium Screw with Bioactive Surface Modification for Bone–Tendon Healing: A Rabbit Animal Model
title_fullStr Three-Dimensional Printed Porous Titanium Screw with Bioactive Surface Modification for Bone–Tendon Healing: A Rabbit Animal Model
title_full_unstemmed Three-Dimensional Printed Porous Titanium Screw with Bioactive Surface Modification for Bone–Tendon Healing: A Rabbit Animal Model
title_short Three-Dimensional Printed Porous Titanium Screw with Bioactive Surface Modification for Bone–Tendon Healing: A Rabbit Animal Model
title_sort three-dimensional printed porous titanium screw with bioactive surface modification for bone–tendon healing: a rabbit animal model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7279243/
https://www.ncbi.nlm.nih.gov/pubmed/32455543
http://dx.doi.org/10.3390/ijms21103628
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