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Poly-Alanine-ε-Caprolacton-Methacrylate as Scaffold Material with Tuneable Biomechanical Properties for Osteochondral Implants

An aging population and injury-related damage of the bone substance lead to an increasing need of innovative materials for the regeneration of osteochondral defects. Biodegradable polymers form the basis for suitable artificial implants intended for bone replacement or bone augmentation. The great a...

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Autores principales: Hauptmann, Nicole, Ludolph, Johanna, Rothe, Holger, Rost, Jürgen, Krupp, Alexander, Lechner, Jörg, Kohlhaas, Svenja, Winkler, Manuela, Stender, Benedikt, Hildebrand, Gerhard, Liefeith, Klaus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8951525/
https://www.ncbi.nlm.nih.gov/pubmed/35328536
http://dx.doi.org/10.3390/ijms23063115
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author Hauptmann, Nicole
Ludolph, Johanna
Rothe, Holger
Rost, Jürgen
Krupp, Alexander
Lechner, Jörg
Kohlhaas, Svenja
Winkler, Manuela
Stender, Benedikt
Hildebrand, Gerhard
Liefeith, Klaus
author_facet Hauptmann, Nicole
Ludolph, Johanna
Rothe, Holger
Rost, Jürgen
Krupp, Alexander
Lechner, Jörg
Kohlhaas, Svenja
Winkler, Manuela
Stender, Benedikt
Hildebrand, Gerhard
Liefeith, Klaus
author_sort Hauptmann, Nicole
collection PubMed
description An aging population and injury-related damage of the bone substance lead to an increasing need of innovative materials for the regeneration of osteochondral defects. Biodegradable polymers form the basis for suitable artificial implants intended for bone replacement or bone augmentation. The great advantage of these structures is the site-specific implant design, which leads to a considerable improvement in patient outcomes and significantly reduced post-operative regeneration times. Thus, biomechanical and biochemical parameters as well as the rate of degradation can be set by the selection of the polymer system and the processing technology. Within this study, we developed a polymer platform based on the amino acid Alanine and ε-Caprolacton for use as raw material for osteochondral implants. The biomechanical and degradation properties of these Poly-(Alanine-co-ε-Caprolacton)-Methacrylate (ACM) copolymers can be adjusted by changing the ratio of the monomers. Fabrication of artificial structures for musculo-skeletal tissue engineering was done by Two-Photon-Polymerization (2PP), which represents an innovative technique for generating defined scaffolds with tailor-made mechanical and structural properties. Here we show the synthesis, physicochemical characterization, as well as first results for structuring ACM using 2PP technology. The data demonstrate the high potential of ACM copolymers as precursors for the fabrication of biomimetic implants for bone-cartilage reconstruction.
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spelling pubmed-89515252022-03-26 Poly-Alanine-ε-Caprolacton-Methacrylate as Scaffold Material with Tuneable Biomechanical Properties for Osteochondral Implants Hauptmann, Nicole Ludolph, Johanna Rothe, Holger Rost, Jürgen Krupp, Alexander Lechner, Jörg Kohlhaas, Svenja Winkler, Manuela Stender, Benedikt Hildebrand, Gerhard Liefeith, Klaus Int J Mol Sci Article An aging population and injury-related damage of the bone substance lead to an increasing need of innovative materials for the regeneration of osteochondral defects. Biodegradable polymers form the basis for suitable artificial implants intended for bone replacement or bone augmentation. The great advantage of these structures is the site-specific implant design, which leads to a considerable improvement in patient outcomes and significantly reduced post-operative regeneration times. Thus, biomechanical and biochemical parameters as well as the rate of degradation can be set by the selection of the polymer system and the processing technology. Within this study, we developed a polymer platform based on the amino acid Alanine and ε-Caprolacton for use as raw material for osteochondral implants. The biomechanical and degradation properties of these Poly-(Alanine-co-ε-Caprolacton)-Methacrylate (ACM) copolymers can be adjusted by changing the ratio of the monomers. Fabrication of artificial structures for musculo-skeletal tissue engineering was done by Two-Photon-Polymerization (2PP), which represents an innovative technique for generating defined scaffolds with tailor-made mechanical and structural properties. Here we show the synthesis, physicochemical characterization, as well as first results for structuring ACM using 2PP technology. The data demonstrate the high potential of ACM copolymers as precursors for the fabrication of biomimetic implants for bone-cartilage reconstruction. MDPI 2022-03-14 /pmc/articles/PMC8951525/ /pubmed/35328536 http://dx.doi.org/10.3390/ijms23063115 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hauptmann, Nicole
Ludolph, Johanna
Rothe, Holger
Rost, Jürgen
Krupp, Alexander
Lechner, Jörg
Kohlhaas, Svenja
Winkler, Manuela
Stender, Benedikt
Hildebrand, Gerhard
Liefeith, Klaus
Poly-Alanine-ε-Caprolacton-Methacrylate as Scaffold Material with Tuneable Biomechanical Properties for Osteochondral Implants
title Poly-Alanine-ε-Caprolacton-Methacrylate as Scaffold Material with Tuneable Biomechanical Properties for Osteochondral Implants
title_full Poly-Alanine-ε-Caprolacton-Methacrylate as Scaffold Material with Tuneable Biomechanical Properties for Osteochondral Implants
title_fullStr Poly-Alanine-ε-Caprolacton-Methacrylate as Scaffold Material with Tuneable Biomechanical Properties for Osteochondral Implants
title_full_unstemmed Poly-Alanine-ε-Caprolacton-Methacrylate as Scaffold Material with Tuneable Biomechanical Properties for Osteochondral Implants
title_short Poly-Alanine-ε-Caprolacton-Methacrylate as Scaffold Material with Tuneable Biomechanical Properties for Osteochondral Implants
title_sort poly-alanine-ε-caprolacton-methacrylate as scaffold material with tuneable biomechanical properties for osteochondral implants
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8951525/
https://www.ncbi.nlm.nih.gov/pubmed/35328536
http://dx.doi.org/10.3390/ijms23063115
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