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The challenge of implant integration in partial meniscal replacement: an experimental study on a silk fibroin scaffold in sheep

PURPOSE: To restore meniscal function after excessive tissue damage, a silk fibroin implant for partial meniscal replacement was developed and investigated in an earlier sheep model. After 6 months implantation, it showed promising results in terms of chondroprotection and biocompatibility. To impro...

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Autores principales: Stein, Svenja Emmi Catherine, von Luebken, Falk, Warnecke, Daniela, Gentilini, Cristina, Skaer, Nick, Walker, Robert, Kessler, Oliver, Ignatius, Anita, Duerselen, Lutz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Berlin Heidelberg 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6394547/
https://www.ncbi.nlm.nih.gov/pubmed/30264241
http://dx.doi.org/10.1007/s00167-018-5160-7
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author Stein, Svenja Emmi Catherine
von Luebken, Falk
Warnecke, Daniela
Gentilini, Cristina
Skaer, Nick
Walker, Robert
Kessler, Oliver
Ignatius, Anita
Duerselen, Lutz
author_facet Stein, Svenja Emmi Catherine
von Luebken, Falk
Warnecke, Daniela
Gentilini, Cristina
Skaer, Nick
Walker, Robert
Kessler, Oliver
Ignatius, Anita
Duerselen, Lutz
author_sort Stein, Svenja Emmi Catherine
collection PubMed
description PURPOSE: To restore meniscal function after excessive tissue damage, a silk fibroin implant for partial meniscal replacement was developed and investigated in an earlier sheep model. After 6 months implantation, it showed promising results in terms of chondroprotection and biocompatibility. To improve surgical fixation, the material was subjected to optimisation and a fibre mesh was integrated into the porous matrix. The aim of the study was the evaluation of this second generation of silk fibroin implants in a sheep model. METHODS: Nine adult merino sheep received subtotal meniscal replacement using the silk fibroin scaffold. In nine additional animals, the defect was left untreated. Sham surgery was performed in another group of nine animals. After 6 months of implantation macroscopic, biomechanical and histological evaluations of the scaffold, meniscus, and articular cartilage were conducted. RESULTS: Macroscopic evaluation revealed no signs of inflammation of the operated knee joint and most implants were located in the defect. However, there was no solid connection to the remaining peripheral meniscal rim and three devices showed a radial rupture at the middle zone. The equilibrium modulus of the scaffold increased after 6 months implantation time as identified by biomechanical testing (before implantation 0.6 ± 0.3 MPa; after implantation: 0.8 ± 0.3 MPa). Macroscopically and histologically visible softening and fibrillation of the articular cartilage in the meniscectomy- and implant group were confirmed biomechanically by indentation testing of the tibial cartilage. CONCLUSIONS: In the current study, biocompatibility of the silk fibroin scaffold was reconfirmed. The initial mechanical properties of the silk fibroin implant resembled native meniscal tissue. However, stiffness of the scaffold increased considerably after implantation. This might have prevented integration of the device and chondroprotection of the underlying cartilage. Furthermore, the increased stiffness of the material is likely responsible for the partial destruction of some implants. Clinically, we learn that an inappropriate replacement device might lead to similar cartilage damage as seen after meniscectomy. Given the poor acceptance of the clinically available partial meniscal replacement devices, it can be speculated that development of a total meniscal replacement device might be the less challenging option.
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spelling pubmed-63945472019-03-15 The challenge of implant integration in partial meniscal replacement: an experimental study on a silk fibroin scaffold in sheep Stein, Svenja Emmi Catherine von Luebken, Falk Warnecke, Daniela Gentilini, Cristina Skaer, Nick Walker, Robert Kessler, Oliver Ignatius, Anita Duerselen, Lutz Knee Surg Sports Traumatol Arthrosc Knee PURPOSE: To restore meniscal function after excessive tissue damage, a silk fibroin implant for partial meniscal replacement was developed and investigated in an earlier sheep model. After 6 months implantation, it showed promising results in terms of chondroprotection and biocompatibility. To improve surgical fixation, the material was subjected to optimisation and a fibre mesh was integrated into the porous matrix. The aim of the study was the evaluation of this second generation of silk fibroin implants in a sheep model. METHODS: Nine adult merino sheep received subtotal meniscal replacement using the silk fibroin scaffold. In nine additional animals, the defect was left untreated. Sham surgery was performed in another group of nine animals. After 6 months of implantation macroscopic, biomechanical and histological evaluations of the scaffold, meniscus, and articular cartilage were conducted. RESULTS: Macroscopic evaluation revealed no signs of inflammation of the operated knee joint and most implants were located in the defect. However, there was no solid connection to the remaining peripheral meniscal rim and three devices showed a radial rupture at the middle zone. The equilibrium modulus of the scaffold increased after 6 months implantation time as identified by biomechanical testing (before implantation 0.6 ± 0.3 MPa; after implantation: 0.8 ± 0.3 MPa). Macroscopically and histologically visible softening and fibrillation of the articular cartilage in the meniscectomy- and implant group were confirmed biomechanically by indentation testing of the tibial cartilage. CONCLUSIONS: In the current study, biocompatibility of the silk fibroin scaffold was reconfirmed. The initial mechanical properties of the silk fibroin implant resembled native meniscal tissue. However, stiffness of the scaffold increased considerably after implantation. This might have prevented integration of the device and chondroprotection of the underlying cartilage. Furthermore, the increased stiffness of the material is likely responsible for the partial destruction of some implants. Clinically, we learn that an inappropriate replacement device might lead to similar cartilage damage as seen after meniscectomy. Given the poor acceptance of the clinically available partial meniscal replacement devices, it can be speculated that development of a total meniscal replacement device might be the less challenging option. Springer Berlin Heidelberg 2018-09-27 2019 /pmc/articles/PMC6394547/ /pubmed/30264241 http://dx.doi.org/10.1007/s00167-018-5160-7 Text en © The Author(s) 2018 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Knee
Stein, Svenja Emmi Catherine
von Luebken, Falk
Warnecke, Daniela
Gentilini, Cristina
Skaer, Nick
Walker, Robert
Kessler, Oliver
Ignatius, Anita
Duerselen, Lutz
The challenge of implant integration in partial meniscal replacement: an experimental study on a silk fibroin scaffold in sheep
title The challenge of implant integration in partial meniscal replacement: an experimental study on a silk fibroin scaffold in sheep
title_full The challenge of implant integration in partial meniscal replacement: an experimental study on a silk fibroin scaffold in sheep
title_fullStr The challenge of implant integration in partial meniscal replacement: an experimental study on a silk fibroin scaffold in sheep
title_full_unstemmed The challenge of implant integration in partial meniscal replacement: an experimental study on a silk fibroin scaffold in sheep
title_short The challenge of implant integration in partial meniscal replacement: an experimental study on a silk fibroin scaffold in sheep
title_sort challenge of implant integration in partial meniscal replacement: an experimental study on a silk fibroin scaffold in sheep
topic Knee
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6394547/
https://www.ncbi.nlm.nih.gov/pubmed/30264241
http://dx.doi.org/10.1007/s00167-018-5160-7
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