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锶取代的、发光的和介孔羟基磷灰石微球用于药物的持续释放。

Strontium-substituted, luminescent and mesoporous hydroxyapatite microspheres for sustained drug release.

机构信息

School of Materials Science and Engineering, Tongji University, Shanghai, 201804, China.

出版信息

J Mater Sci Mater Med. 2014 Feb;25(2):391-400. doi: 10.1007/s10856-013-5081-4. Epub 2014 Jan 9.

Abstract

The multifunctional strontium (Sr)-substituted hydroxyapatite microsphere was prepared via hydrothermal method, in which the luminescent and controlled drug release functions can be realized. The structure and morphology of the as-prepared microspheres were studied by using XRD, FTIR, SEM, TEM, HR-TEM, BET method. The optical properties was investigated by using photoluminescence (PL) and XPS measurement. Then, the as-prepared multifunctional microspheres were performed as a drug delivery carrier using vancomycin as a model drug. The experimental results show that the composition, morphology, luminescent properties and drug storage/release behaviour were obviously influenced by the amount of Sr. The microspheres with Sr(2+)/(Ca(2+) + Sr(2+)) = 0.3 of Sr substitution showed the maximum specific surface area, best pore structure and strongest PL intensity. All the samples presented remarkable sustained drug release kinetics. In addition, the PL intensity of SrHA in the drug delivery system increased with the cumulative release time (amount) of vancomycin, which would make the drug release might be possibly tracked by the change of the luminescent intensity. Our study indicated a potential prospect that the fabricated multifunctional SrHA mesoporous microspheres might be applied in the field of bone regeneration and drug delivery.

摘要

通过水热法制备了多功能锶(Sr)取代的羟基磷灰石微球,实现了发光和控制药物释放功能。通过 XRD、FTIR、SEM、TEM、HR-TEM、BET 方法研究了所制备的微球的结构和形态。通过光致发光(PL)和 XPS 测量研究了光学性质。然后,将所制备的多功能微球用作载药系统,以万古霉素为模型药物。实验结果表明,Sr 的用量明显影响了组成、形态、发光性能和药物储存/释放行为。Sr 取代的 Sr(2+)/(Ca(2+) + Sr(2+))=0.3 的微球表现出最大的比表面积、最佳的孔结构和最强的 PL 强度。所有样品均表现出显著的持续药物释放动力学。此外,载药系统中 SrHA 的 PL 强度随万古霉素的累积释放时间(量)的增加而增加,这使得药物释放可能通过发光强度的变化来跟踪。我们的研究表明,所制备的多功能 SrHA 介孔微球可能在骨再生和药物输送领域具有潜在的应用前景。

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