Cargando…

The Effect of Low-Temperature Thermal Processing on Bovine Hydroxyapatite Bone Substitutes, toward Bone Cell Interaction and Differentiation

Ideal bone grafting scaffolds are osteoinductive, osteoconductive, and encourage osteogenesis through the remodeling processes of bone resorption, new bone formation, and successful integration or replacement; however, achieving this trifecta remains challenging. Production methods of bone grafts, s...

Descripción completa

Detalles Bibliográficos
Autores principales: Porter, Gemma Claire, Abdelmoneim, Dina, Li, Kai Chun, Duncan, Warwick John, Coates, Dawn Elizabeth
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8999525/
https://www.ncbi.nlm.nih.gov/pubmed/35407837
http://dx.doi.org/10.3390/ma15072504
_version_ 1784685206970564608
author Porter, Gemma Claire
Abdelmoneim, Dina
Li, Kai Chun
Duncan, Warwick John
Coates, Dawn Elizabeth
author_facet Porter, Gemma Claire
Abdelmoneim, Dina
Li, Kai Chun
Duncan, Warwick John
Coates, Dawn Elizabeth
author_sort Porter, Gemma Claire
collection PubMed
description Ideal bone grafting scaffolds are osteoinductive, osteoconductive, and encourage osteogenesis through the remodeling processes of bone resorption, new bone formation, and successful integration or replacement; however, achieving this trifecta remains challenging. Production methods of bone grafts, such as thermal processing, can have significant effects on the degree of cell-surface interactions via wide-scale changes in the material properties. Here, we investigated the effects of small incremental changes at low thermal processing temperatures on the degree of osteoclast and osteoblast attachment, proliferation, and differentiation. Bovine bone scaffolds were prepared at 100, 130, 160, 190, and 220 °C and compared with a commercial control, Bio-Oss(®). Osteoclast attachment and activity were significantly higher on lower temperature processed bone and were not present ≥190 °C. The highest osteoblast proliferation and differentiation were obtained from treatments at 130 and 160 °C. Similarly, qRT(2)-PCR assays highlighted osteoblasts attached to bone processed at 130 and 160 °C as demonstrating the highest osteogenic gene expression. This study demonstrated the significant effects of small-scale processing changes on bone graft materials in vitro, which may translate to a tailored approach of cellular response in vivo.
format Online
Article
Text
id pubmed-8999525
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-89995252022-04-12 The Effect of Low-Temperature Thermal Processing on Bovine Hydroxyapatite Bone Substitutes, toward Bone Cell Interaction and Differentiation Porter, Gemma Claire Abdelmoneim, Dina Li, Kai Chun Duncan, Warwick John Coates, Dawn Elizabeth Materials (Basel) Article Ideal bone grafting scaffolds are osteoinductive, osteoconductive, and encourage osteogenesis through the remodeling processes of bone resorption, new bone formation, and successful integration or replacement; however, achieving this trifecta remains challenging. Production methods of bone grafts, such as thermal processing, can have significant effects on the degree of cell-surface interactions via wide-scale changes in the material properties. Here, we investigated the effects of small incremental changes at low thermal processing temperatures on the degree of osteoclast and osteoblast attachment, proliferation, and differentiation. Bovine bone scaffolds were prepared at 100, 130, 160, 190, and 220 °C and compared with a commercial control, Bio-Oss(®). Osteoclast attachment and activity were significantly higher on lower temperature processed bone and were not present ≥190 °C. The highest osteoblast proliferation and differentiation were obtained from treatments at 130 and 160 °C. Similarly, qRT(2)-PCR assays highlighted osteoblasts attached to bone processed at 130 and 160 °C as demonstrating the highest osteogenic gene expression. This study demonstrated the significant effects of small-scale processing changes on bone graft materials in vitro, which may translate to a tailored approach of cellular response in vivo. MDPI 2022-03-29 /pmc/articles/PMC8999525/ /pubmed/35407837 http://dx.doi.org/10.3390/ma15072504 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
Porter, Gemma Claire
Abdelmoneim, Dina
Li, Kai Chun
Duncan, Warwick John
Coates, Dawn Elizabeth
The Effect of Low-Temperature Thermal Processing on Bovine Hydroxyapatite Bone Substitutes, toward Bone Cell Interaction and Differentiation
title The Effect of Low-Temperature Thermal Processing on Bovine Hydroxyapatite Bone Substitutes, toward Bone Cell Interaction and Differentiation
title_full The Effect of Low-Temperature Thermal Processing on Bovine Hydroxyapatite Bone Substitutes, toward Bone Cell Interaction and Differentiation
title_fullStr The Effect of Low-Temperature Thermal Processing on Bovine Hydroxyapatite Bone Substitutes, toward Bone Cell Interaction and Differentiation
title_full_unstemmed The Effect of Low-Temperature Thermal Processing on Bovine Hydroxyapatite Bone Substitutes, toward Bone Cell Interaction and Differentiation
title_short The Effect of Low-Temperature Thermal Processing on Bovine Hydroxyapatite Bone Substitutes, toward Bone Cell Interaction and Differentiation
title_sort effect of low-temperature thermal processing on bovine hydroxyapatite bone substitutes, toward bone cell interaction and differentiation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8999525/
https://www.ncbi.nlm.nih.gov/pubmed/35407837
http://dx.doi.org/10.3390/ma15072504
work_keys_str_mv AT portergemmaclaire theeffectoflowtemperaturethermalprocessingonbovinehydroxyapatitebonesubstitutestowardbonecellinteractionanddifferentiation
AT abdelmoneimdina theeffectoflowtemperaturethermalprocessingonbovinehydroxyapatitebonesubstitutestowardbonecellinteractionanddifferentiation
AT likaichun theeffectoflowtemperaturethermalprocessingonbovinehydroxyapatitebonesubstitutestowardbonecellinteractionanddifferentiation
AT duncanwarwickjohn theeffectoflowtemperaturethermalprocessingonbovinehydroxyapatitebonesubstitutestowardbonecellinteractionanddifferentiation
AT coatesdawnelizabeth theeffectoflowtemperaturethermalprocessingonbovinehydroxyapatitebonesubstitutestowardbonecellinteractionanddifferentiation
AT portergemmaclaire effectoflowtemperaturethermalprocessingonbovinehydroxyapatitebonesubstitutestowardbonecellinteractionanddifferentiation
AT abdelmoneimdina effectoflowtemperaturethermalprocessingonbovinehydroxyapatitebonesubstitutestowardbonecellinteractionanddifferentiation
AT likaichun effectoflowtemperaturethermalprocessingonbovinehydroxyapatitebonesubstitutestowardbonecellinteractionanddifferentiation
AT duncanwarwickjohn effectoflowtemperaturethermalprocessingonbovinehydroxyapatitebonesubstitutestowardbonecellinteractionanddifferentiation
AT coatesdawnelizabeth effectoflowtemperaturethermalprocessingonbovinehydroxyapatitebonesubstitutestowardbonecellinteractionanddifferentiation