The Effects of the Addition of Strontium on the Biological Response to Calcium Phosphate Biomaterials: A Systematic Review
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Published:2024-08-27
Issue:17
Volume:14
Page:7566
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ISSN:2076-3417
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Container-title:Applied Sciences
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language:en
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Short-container-title:Applied Sciences
Author:
Alves Côrtes Juliana1, Dornelas Jessica1, Duarte Fabiola1, Messora Michel Reis2ORCID, Mourão Carlos Fernando1234ORCID, Alves Gutemberg14ORCID
Affiliation:
1. Post-Graduation Program in Science and Biotechnology, Institute of Biology, Fluminense Federal University, Niterói 24033-900, Brazil 2. Department of Oral and Maxillofacial Surgery and Periodontology, School of Dentistry of Ribeirao Preto, University of Sao Paulo, Ribeirao Preto 14040-904, Brazil 3. Department of Clinical and Translational Research, Tufts University Scholl of Dental Medicine, Boston, MA 02111, USA 4. Clinical Research Unit, Antônio Pedro Hospital, Fluminense Federal University, Niterói 24033-900, Brazil
Abstract
Strontium is known for enhancing bone metabolism, osteoblast proliferation, and tissue regeneration. This systematic review aimed to investigate the biological effects of strontium-doped calcium phosphate biomaterials for bone therapy. A literature search up to May 2024 across Web of Science, PubMed, and Scopus retrieved 759 entries, with 42 articles meeting the selection criteria. The studies provided data on material types, strontium incorporation and release, and in vivo and in vitro evidence. Strontium-doped calcium phosphate biomaterials were produced via chemical synthesis and deposited on various substrates, with characterization techniques confirming successful strontium incorporation. Appropriate concentrations of strontium were non-cytotoxic, stimulating cell proliferation, adhesion, and osteogenic factor production through key signaling pathways like Wnt/β-catenin, BMP-2, Runx2, and ERK. In vivo studies identified novel bone formation, angiogenesis, and inhibition of bone resorption. These findings support the safety and efficacy of strontium-doped calcium phosphates, although the optimal strontium concentration for desired effects is still undetermined. Future research should focus on optimizing strontium release kinetics and elucidating molecular mechanisms to enhance clinical applications of these biomaterials in bone tissue engineering.
Reference76 articles.
1. Liang, W., Zhou, C., Bai, J., Zhang, H., Jiang, B., Wang, J., Fu, L., Long, H., Huang, X., and Zhao, J. (2024). Current advancements in therapeutic approaches in orthopedic surgery: A review of recent trends. Front. Bioeng. Biotechnol., 12. 2. Development and application of hydroxyapatite-based scaffolds for bone tissue regeneration: A systematic literature review;Fendi;Bone,2024 3. Ramírez Fernández, M.P., Gehrke, S.A., Mazón, P., Calvo-Guirado, J.L., and De Aza, P.N. (2017). Implant Stability of Biological Hydroxyapatites Used in Dentistry. Materials, 10. 4. In vitro degradation of calcium phosphates: Effect of multiscale porosity, textural properties and composition;Espanol;Acta Biomater.,2017 5. Dornelas, J., Dornelas, G., Rossi, A., Piattelli, A., Pietro, N.D., Romasco, T., Mourão, C.F., and Alves, G.G. (2024). The Incorporation of Zinc into Hydroxyapatite and Its Influence on the Cellular Response to Biomaterials: A Systematic Review. J. Funct. Biomater., 15.
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