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Biocompatible Customized 3D Bone Scaffolds Treated with CRFP, an Osteogenic Peptide

Background: Currently used synthetic bone graft substitutes (BGS) are either too weak to bear the principal load or if metallic, they can support loading, but can lead to stress shielding and are unable to integrate fully. In this study, we developed biocompatible, 3D printed scaffolds derived from...

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Autores principales: Mustahsan, Vamiq M., Anugu, Amith, Komatsu, David E., Kao, Imin, Pentyala, Srinivas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8698998/
https://www.ncbi.nlm.nih.gov/pubmed/34940352
http://dx.doi.org/10.3390/bioengineering8120199
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author Mustahsan, Vamiq M.
Anugu, Amith
Komatsu, David E.
Kao, Imin
Pentyala, Srinivas
author_facet Mustahsan, Vamiq M.
Anugu, Amith
Komatsu, David E.
Kao, Imin
Pentyala, Srinivas
author_sort Mustahsan, Vamiq M.
collection PubMed
description Background: Currently used synthetic bone graft substitutes (BGS) are either too weak to bear the principal load or if metallic, they can support loading, but can lead to stress shielding and are unable to integrate fully. In this study, we developed biocompatible, 3D printed scaffolds derived from µCT images of the bone that can overcome these issues and support the growth of osteoblasts. Methods: Cylindrical scaffolds were fabricated with acrylonitrile butadiene styrene (ABS) and Stratasys(®) MED 610 (MED610) materials. The 3D-printed scaffolds were seeded with Mus musculus calvaria cells (MC3T3). After the cells attained confluence, osteogenesis was induced with and without the addition of calcitonin receptor fragment peptide (CRFP) and the bone matrix production was analyzed. Mechanical compression testing was carried out to measure compressive strength, stiffness, and elastic modulus. Results: For the ABS scaffolds, there was a 9.8% increase in compressive strength (p < 0.05) in the scaffolds with no pre-coating and the treatment with CRFP, compared to non-treated scaffolds. Similarly, MED610 scaffolds treated with CRFP showed an 11.9% (polylysine pre-coating) and a 20% (no pre-coating) increase (p < 0.01) in compressive strength compared to non-treated scaffolds. Conclusions: MED610 scaffolds are excellent BGS as they support osteoblast growth and show enhanced bone growth with enhanced compressive strength when augmented with CRFP.
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spelling pubmed-86989982021-12-24 Biocompatible Customized 3D Bone Scaffolds Treated with CRFP, an Osteogenic Peptide Mustahsan, Vamiq M. Anugu, Amith Komatsu, David E. Kao, Imin Pentyala, Srinivas Bioengineering (Basel) Article Background: Currently used synthetic bone graft substitutes (BGS) are either too weak to bear the principal load or if metallic, they can support loading, but can lead to stress shielding and are unable to integrate fully. In this study, we developed biocompatible, 3D printed scaffolds derived from µCT images of the bone that can overcome these issues and support the growth of osteoblasts. Methods: Cylindrical scaffolds were fabricated with acrylonitrile butadiene styrene (ABS) and Stratasys(®) MED 610 (MED610) materials. The 3D-printed scaffolds were seeded with Mus musculus calvaria cells (MC3T3). After the cells attained confluence, osteogenesis was induced with and without the addition of calcitonin receptor fragment peptide (CRFP) and the bone matrix production was analyzed. Mechanical compression testing was carried out to measure compressive strength, stiffness, and elastic modulus. Results: For the ABS scaffolds, there was a 9.8% increase in compressive strength (p < 0.05) in the scaffolds with no pre-coating and the treatment with CRFP, compared to non-treated scaffolds. Similarly, MED610 scaffolds treated with CRFP showed an 11.9% (polylysine pre-coating) and a 20% (no pre-coating) increase (p < 0.01) in compressive strength compared to non-treated scaffolds. Conclusions: MED610 scaffolds are excellent BGS as they support osteoblast growth and show enhanced bone growth with enhanced compressive strength when augmented with CRFP. MDPI 2021-11-30 /pmc/articles/PMC8698998/ /pubmed/34940352 http://dx.doi.org/10.3390/bioengineering8120199 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
Mustahsan, Vamiq M.
Anugu, Amith
Komatsu, David E.
Kao, Imin
Pentyala, Srinivas
Biocompatible Customized 3D Bone Scaffolds Treated with CRFP, an Osteogenic Peptide
title Biocompatible Customized 3D Bone Scaffolds Treated with CRFP, an Osteogenic Peptide
title_full Biocompatible Customized 3D Bone Scaffolds Treated with CRFP, an Osteogenic Peptide
title_fullStr Biocompatible Customized 3D Bone Scaffolds Treated with CRFP, an Osteogenic Peptide
title_full_unstemmed Biocompatible Customized 3D Bone Scaffolds Treated with CRFP, an Osteogenic Peptide
title_short Biocompatible Customized 3D Bone Scaffolds Treated with CRFP, an Osteogenic Peptide
title_sort biocompatible customized 3d bone scaffolds treated with crfp, an osteogenic peptide
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8698998/
https://www.ncbi.nlm.nih.gov/pubmed/34940352
http://dx.doi.org/10.3390/bioengineering8120199
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