Have a personal or library account? Click to login

References

  1. Dimitriou, R., Jones, E., McGonagle, D., Giannoudis, P. V. (2011). Bone regeneration: Current concepts and future directions. BMC Med., 9, 66–71.10.1186/1741-7015-9-66312371421627784
  2. Ehret, C., Aid-Launais, R., Sagardoy, T., Siadous, R., Bareille, R., Rey, S., Pechev, S., Etienne, L., Kalisky, J., de Mones, E., Letourneur, D., Amedee Vilamitjana, J. (2017). Strontium-doped hydroxyapatite polysaccharide materials effect on ectopic bone formation. PLoS One, 12 (9), e0184663.10.1371/journal.pone.0184663559899328910401
  3. Kim, D. G. (2014). Can dental cone beam computed tomography assess bone mineral density? J. Bone Metab., 21 (2), 117–126.10.11005/jbm.2014.21.2.117407526525006568
  4. Landi, E., Tampieri, A., Celotti, G., Sprio, S., Sandri, M., Logroscino, G. (2007). Sr-substituted hydroxyapatites for osteoporotic bone replacement, Acta Biomater., 3 (6), 961–969.10.1016/j.actbio.2007.05.006
  5. Li, Y., Luo, E., Zhu, S., Li, J., Zhang, L., Hu, J. (2015). Cancellous bone response to strontium-doped hydroxyapatite in osteoporotic rats. J. Appl. Biomater. Funct. Mater.,13 (1), 28–34.10.5301/jabfm.500016824744229
  6. Lode, A., Heiss, C., Knapp, G., Thomas, J., Nies, B., Gelinsky, M., Schumacher, M. (2017). Strontium-modified premixed calcium phosphate cements for the therapy of osteoporotic bone defects. Acta Biomater., 1, 30664–30665.
  7. Ratner, B. D., Hoffman, A. S., Schoen, F. J., Lemons, J. E. (2013). Biomaterials Science: An Introduction to Materials in Medicine. 3rd edn. Elsevier. 1573 pp.
  8. Saint-Jean, S. J., Camire, C. L., Nevsten, P., Hansen, S., Ginebra, M. P. (2005). Study of the reactivity and in vitro bioactivity of Sr-substituted α-TCP cement. J. Mater. Sci. Mater. Med., 16, 993–1001.10.1007/s10856-005-4754-z16388381
  9. Salma, I., Petronis, S., Pilmane, M., Skagers, A., Zalite, V., Locs, J. (2015). Local recovery of bone tissue in osteoporotic rabbit hip after implantation of HAP/TCP bioceramic granules. In: 27th European Conference on Biomaterials: Final Programme and Book of Abstracts, Krakov, Poland, 30th August – 3rd September, 2015. Scientific Publishing House “Akapit”, Krakow, p. 409. Available at: http://www.proceedings.com/28321.html (accessed 18.02.2019).
  10. Schlickewei, C. W., Laaff, G., Andresen, A., Klatte, T. O., Rueger, J. M., Ruesing, J., Epple, M., Lehmann, W. (2015). Bone augmentation using a new injectable bone graft substitute by combining calcium phosphate and bisphosphonate as composite: An animal model. J. Orthop. Surg. Res., 10, 116.10.1186/s13018-015-0263-z451361826205381
  11. Wang, W., Yeung, K. W. K. (2017). Bone grafts and biomaterials substitutes for bone defect repair: A review. Bioact. Mater., 2, 224–247.10.1016/j.bioactmat.2017.05.007593565529744432
DOI: https://doi.org/10.2478/prolas-2019-0029 | Journal eISSN: 2255-890X | Journal ISSN: 1407-009X
Language: English
Page range: 185 - 188
Submitted on: Nov 7, 2018
Accepted on: Feb 19, 2019
Published on: Apr 7, 2019
Published by: Latvian Academy of Sciences
In partnership with: Paradigm Publishing Services
Publication frequency: 6 times per year

© 2019 Vladislavs Ananjevs, Aleksandra Ananjeva, Jānis Vētra, Andrejs Skaģers, Ilze Salma, Laura Neimane, Vladimir Kasyanov, published by Latvian Academy of Sciences
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.