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用于多模式生物活性应用的高反应性晶相嵌入的锶生物活性纳米棒。

Highly reactive crystalline-phase-embedded strontium-bioactive nanorods for multimodal bioactive applications.

机构信息

National Centre for Nanoscience and Nanotechnology, University of Madras, Chennai, India.

出版信息

Biomater Sci. 2018 Jun 25;6(7):1764-1776. doi: 10.1039/c8bm00362a.

Abstract

In the present work, a crystallization-induced strontium-bioactive material, with a composition similar to Bioglass 45S5 system, was obtained using a sol-gel-assisted microwave method with nanorod morphologies of 30-80 nm in size. The effect of crystallization induced in the glass network, and its influence on the bioactivity and mechanical properties of bone and dentin regeneration, were the main novel findings of this work. Rietveld analysis of X-ray diffraction spectra showed the best fit with sodium (combeite, Na2Ca2Si3O9) and calcium (clinophosinaite, Ca2Na6O14P2Si2; calcium strontium silicate, Ca1.5O4SiSr0.5; and calcium carbonate, CaCO3) enriched crystal systems. Multinuclear solid-state NMR studies provided detailed atomistic insight into the presence of crystalline mineral phases in the bioactive material. The dentin matrix and antibacterial studies showed good results for 5% strontium-substituted calcium compared with basic 45S5 composition due to its smaller particle size (30 nm), which suggested applications to dentin regeneration. Simulation studies have been demonstrated with clinophosinaite crystal data from the XRD spectra, with the glycoprotein salivary metabolites also showing that 5% strontium-substituted calcium has a higher binding affinity for the salivary compound, which is suitable for dentin regeneration applications. In vitro apatite formation studies showed that this material is suitable for bone regeneration applications.

摘要

在本工作中,使用溶胶-凝胶辅助微波法获得了一种具有类似于 Bioglass 45S5 系统组成的、具有 30-80nm 纳米棒形貌的诱导结晶的锶生物活性材料。玻璃网络中诱导结晶的效果及其对骨和牙本质再生的生物活性和机械性能的影响,是本工作的主要新颖发现。X 射线衍射光谱的 Rietveld 分析表明,与富含钠(钠钙硅石,Na2Ca2Si3O9)和钙(钙霞石,Ca2Na6O14P2Si2;钙硅酸二钙,Ca1.5O4SiSr0.5;碳酸钙,CaCO3)的晶体系统拟合最好。多核固态 NMR 研究为生物活性材料中存在的结晶矿物相提供了详细的原子水平的见解。牙本质基质和抗菌研究表明,与基本的 45S5 组成相比,5%锶取代钙具有更好的效果,这是由于其较小的粒径(30nm),这表明其可应用于牙本质再生。模拟研究已经用 XRD 光谱中的钙霞石晶体数据进行了演示,唾液代谢物中的糖蛋白也表明 5%锶取代钙对唾液化合物具有更高的结合亲和力,这适合于牙本质再生应用。体外磷灰石形成研究表明,该材料适用于骨再生应用。

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