A Novel Fast-Setting Strontium-Containing Hydroxyapatite Bone Cement With A Simple Binary Powder System

FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY(2021)

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Abstract
In recent years, strontium-substituted calcium phosphate bone cement (Sr-CPC) has attracted more and more attentions in the field of bone tissue repair due to its comprehensive advantages of both traditional CPC and Sr ions. In this study, a crucial Sr-containing alpha-Ca3-xSrx(PO4)(2) salt has been synthesized using a simplified one-step method at lower synthesis temperature. A novel Sr-CPC has been developed based on the simple binary Sr-containing alpha-Ca3-xSrx(PO4)(2)/Ca-4(PO4)(2)O cement powder. The physicochemical properties and hydration mechanism of this Sr-CPC at various Sr contents were intensively investigated. The setting product of this Sr-CPC after a set for 72 h is a single-phase Sr-containing hydroxyapatite, and its compressive strength slightly decreased and its setting time extended with the increase of Sr content. The hydration process included the initial formation of the medium product CaHPO4.2H(2)O (30 min similar to 1 h), the following complete hydration of Ca-4(PO4)(2)O and the initially formed CaHPO4.2H(2)O (2 similar to 6 h), and the final self-setting of alpha-Ca3-xSrx(PO4)(2) (6 h similar to). The compressive strength of Sr-CPC, which was closely related to the transformation rate of Sr-containing hydroxyapatite, tended to increase with the extension of hydration time. In addition, Sr-CPC possessed favorable cytocompatibility and the effect of Sr ions on cytocompatibility of Sr-CPC was not obvious at low Sr contents. The present study suggests alpha-Ca3-xSrx(PO4)(2) is a kind of vital Sr-containing salt source which is useful to develop some novel Sr-containing biomaterials. In addition, the new Sr-containing cement system based on this simple binary alpha-Ca3-xSrx(PO4)(2)/Ca-4(PO4)(2)O cement powder displayed an attractive clinical application potential in orthopedics.
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Key words
hydration reaction, strontium, physicochemical property, cytocompatibility, calcium phosphate bone cement
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