## Abstract Strontium is known to reduce bone resorption and stimulate bone formation. We have investigated the effect of strontium on the setting properties and __in vitro__ bioactivity of a biomimetic gelatin–calcium phosphate bone cement. Gelatin‐α‐TCP powders, with a gelatin content of 15 wt %,
O-phospho-L-serine modified calcium phosphate cements – material properties, in vitro and in vivo investigations
✍ Scribed by A. Reinstorf; U. Hempel; F. Olgemöller; H. Domaschke; W. Schneiders; R. Mai; B. Stadlinger; A. Rösen-Wolff; S. Rammelt; M. Gelinsky; W. Pompe
- Publisher
- John Wiley and Sons
- Year
- 2006
- Tongue
- English
- Weight
- 667 KB
- Volume
- 37
- Category
- Article
- ISSN
- 0933-5137
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✦ Synopsis
Abstract
One of the most important requirements for calcium phosphate bone cements (CPBC) is remodelling in vivo. Degradation of the artificial material and the formation of native new bone matrix have to interdigitate to avoid instability. The remodelling process should not last longer than one year. In this study a CPBC was modified with O‐phospho‐L‐serine (phosphoserine) to improve the material properties in order to speed up remodelling in vivo. The results showed that the modified cements exhibit a nano‐crystalline microstructure with a high specific surface area and increased compressive strength (about 50 %). Metabolic activity of osteoblasts was improved on the modified material. Monocytes were found to be highly activated on the cements containing phosphoserine. In addition the formation of multinucleated giant cells (osteoclast‐like cells) was not impaired on phosphoserine modified cement composites. In vivo experiments in Wistar rats and mini pigs clearly revealed that phosphoserine modified cements showed a higher capability of remodelling compared to the cements without phosphoserine.
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## Abstract The properties of new calcium phosphate/calcium silicate/bismutite (CPCSBi) cement were compared with those of calcium hydroxide (CH) and Dycal cements in dental pulp‐capping applications. CPCSBi is composed of hydroxyapatite, tetracalcium phosphate, bismutite, and calcium silicate, whi