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水热法衍生纳米玻璃作为一种高生物活性材料。

Solvothermally-derived nanoglass as a highly bioactive material.

机构信息

Institute of Low Temperature and Structure Research, Polish Academy of Sciences, Okólna 2, 50-422 Wrocław, Poland.

Faculty of Biological and Veterinary Sciences, Nicolaus Copernicus University in Toruń, Lwowska 1, 87-100 Toruń, Poland.

出版信息

Nanoscale. 2022 Apr 7;14(14):5514-5528. doi: 10.1039/d1nr05984j.

DOI:10.1039/d1nr05984j
PMID:35343556
Abstract

A highly bioactive glass solvBG76 in a binary system 76SiO-24CaO (wt%) was prepared following a solvothermal path of the synthesis. The facile synthesis, in terms of the steps and reagents needed, enabled the achievement of a mesoporous material. Many factors such as nano-size (<50 nm), different morphology (non-spherical), use of an unconventional network modifier (calcium hydroxide) during the synthesis, a structure free of crystalline impurities, and textural properties greatly enhanced the kinetic deposition process of hydroxyapatite (HA) when contacting with physiological fluids. The formation of a HA layer on the glass was analyzed by various techniques, namely XRD, IR-ATR, Raman, XPS, EDS analyses, SEM, and HR-TEM imaging. The results obtained were compared to the 45S5 glass tested as a reference biomaterial as well as 70S30C-a glass with similar size and composition to reported solvBG76 but obtained by the conventional sol-gel method. For the first time, superior apatite-mineralization ability in less than 1 h in a physiological-like buffer was achieved. This unique bioactivity is accompanied by biocompatibility and hemocompatibility, which was indicated by a set of various assays in human dermal fibroblasts and MC3T3 mouse osteoblast precursor cells, as well as hemolytic activity determination.

摘要

采用溶剂热法合成了一种二元体系 76SiO-24CaO(wt%)的高生物活性玻璃溶胶 BG76。从所需步骤和试剂的角度来看,这种简便的合成方法能够实现介孔材料的制备。许多因素,如纳米尺寸(<50nm)、不同形态(非球形)、在合成过程中使用非常规网络修饰剂(氢氧化钙)、无结晶杂质的结构以及增强的纹理特性,极大地促进了在与生理流体接触时羟基磷灰石(HA)的动力学沉积过程。通过各种技术,即 XRD、IR-ATR、拉曼、XPS、EDS 分析、SEM 和 HR-TEM 成像,对玻璃上形成的 HA 层进行了分析。将获得的结果与作为参考生物材料的 45S5 玻璃以及与报道的溶胶 BG76 具有相似尺寸和组成但通过传统溶胶-凝胶法获得的 70S30C-a 玻璃进行了比较。首次在生理类似缓冲液中不到 1 小时实现了优异的磷灰石矿化能力。这种独特的生物活性伴随着生物相容性和血液相容性,这通过一系列在人皮肤成纤维细胞和 MC3T3 小鼠成骨前体细胞中的各种测定以及溶血活性测定得到了证明。

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