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Osteoconductive Properties of a Volume-Stable Collagen Matrix in Rat Calvaria Defects: A Pilot Study

Volume-stable collagen matrices (VSCM) are conductive for the connective tissue upon soft tissue augmentation. Considering that collagen has osteoconductive properties, we have investigated the possibility that the VSCM also consolidates with the newly formed bone. To this end, we covered nine rat c...

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Autores principales: Alccayhuaman, Karol Alí Apaza, Tangl, Stefan, Blouin, Stéphane, Hartmann, Markus A., Heimel, Patrick, Kuchler, Ulrike, Lee, Jung-Seok, Gruber, Reinhard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8301482/
https://www.ncbi.nlm.nih.gov/pubmed/34202317
http://dx.doi.org/10.3390/biomedicines9070732
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author Alccayhuaman, Karol Alí Apaza
Tangl, Stefan
Blouin, Stéphane
Hartmann, Markus A.
Heimel, Patrick
Kuchler, Ulrike
Lee, Jung-Seok
Gruber, Reinhard
author_facet Alccayhuaman, Karol Alí Apaza
Tangl, Stefan
Blouin, Stéphane
Hartmann, Markus A.
Heimel, Patrick
Kuchler, Ulrike
Lee, Jung-Seok
Gruber, Reinhard
author_sort Alccayhuaman, Karol Alí Apaza
collection PubMed
description Volume-stable collagen matrices (VSCM) are conductive for the connective tissue upon soft tissue augmentation. Considering that collagen has osteoconductive properties, we have investigated the possibility that the VSCM also consolidates with the newly formed bone. To this end, we covered nine rat calvaria circular defects with a VSCM. After four weeks, histology, histomorphometry, quantitative backscattered electron imaging, and microcomputed tomography were performed. We report that the overall pattern of mineralization inside the VSCM was heterogeneous. Histology revealed, apart from the characteristic woven bone formation, areas of round-shaped hypertrophic chondrocyte-like cells surrounded by a mineralized extracellular matrix. Quantitative backscattered electron imaging confirmed the heterogenous mineralization occurring within the VSCM. Histomorphometry found new bone to be 0.7 mm(2) (0.01 min; 2.4 max), similar to the chondrogenic mineralized extracellular matrix with 0.7 mm(2) (0.0 min; 4.2 max). Microcomputed tomography showed the overall mineralized tissue in the defect to be 1.6 mm(3) (min 0.0; max 13.3). These findings suggest that in a rat cranial defect, VSCM has a limited and heterogeneous capacity to support intramembranous bone formation but may allow the formation of bone via the endochondral route.
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spelling pubmed-83014822021-07-24 Osteoconductive Properties of a Volume-Stable Collagen Matrix in Rat Calvaria Defects: A Pilot Study Alccayhuaman, Karol Alí Apaza Tangl, Stefan Blouin, Stéphane Hartmann, Markus A. Heimel, Patrick Kuchler, Ulrike Lee, Jung-Seok Gruber, Reinhard Biomedicines Article Volume-stable collagen matrices (VSCM) are conductive for the connective tissue upon soft tissue augmentation. Considering that collagen has osteoconductive properties, we have investigated the possibility that the VSCM also consolidates with the newly formed bone. To this end, we covered nine rat calvaria circular defects with a VSCM. After four weeks, histology, histomorphometry, quantitative backscattered electron imaging, and microcomputed tomography were performed. We report that the overall pattern of mineralization inside the VSCM was heterogeneous. Histology revealed, apart from the characteristic woven bone formation, areas of round-shaped hypertrophic chondrocyte-like cells surrounded by a mineralized extracellular matrix. Quantitative backscattered electron imaging confirmed the heterogenous mineralization occurring within the VSCM. Histomorphometry found new bone to be 0.7 mm(2) (0.01 min; 2.4 max), similar to the chondrogenic mineralized extracellular matrix with 0.7 mm(2) (0.0 min; 4.2 max). Microcomputed tomography showed the overall mineralized tissue in the defect to be 1.6 mm(3) (min 0.0; max 13.3). These findings suggest that in a rat cranial defect, VSCM has a limited and heterogeneous capacity to support intramembranous bone formation but may allow the formation of bone via the endochondral route. MDPI 2021-06-25 /pmc/articles/PMC8301482/ /pubmed/34202317 http://dx.doi.org/10.3390/biomedicines9070732 Text en © 2021 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
Alccayhuaman, Karol Alí Apaza
Tangl, Stefan
Blouin, Stéphane
Hartmann, Markus A.
Heimel, Patrick
Kuchler, Ulrike
Lee, Jung-Seok
Gruber, Reinhard
Osteoconductive Properties of a Volume-Stable Collagen Matrix in Rat Calvaria Defects: A Pilot Study
title Osteoconductive Properties of a Volume-Stable Collagen Matrix in Rat Calvaria Defects: A Pilot Study
title_full Osteoconductive Properties of a Volume-Stable Collagen Matrix in Rat Calvaria Defects: A Pilot Study
title_fullStr Osteoconductive Properties of a Volume-Stable Collagen Matrix in Rat Calvaria Defects: A Pilot Study
title_full_unstemmed Osteoconductive Properties of a Volume-Stable Collagen Matrix in Rat Calvaria Defects: A Pilot Study
title_short Osteoconductive Properties of a Volume-Stable Collagen Matrix in Rat Calvaria Defects: A Pilot Study
title_sort osteoconductive properties of a volume-stable collagen matrix in rat calvaria defects: a pilot study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8301482/
https://www.ncbi.nlm.nih.gov/pubmed/34202317
http://dx.doi.org/10.3390/biomedicines9070732
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