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Mesoporous hydroxyapatite by hard templating of silica and carbon foams for protein release

机译:通过对二氧化硅和碳泡沫进行硬模板处理来释放蛋白质的介孔羟基磷灰石

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摘要

Calcium phosphates, particularly hydroxyapatite Ca_(10)(PO _4)_6(OH)_2 (HA), are widely used for bone regeneration due to their biocompatibility and good resorption properties. However, their performance upon implantation is improved when they are associated with bioactive molecules such as growth factors. Using mesoporous HA leads to improved protein adsorption and release kinetics because the diameter of the mesopores (2-50 nm) is in the same range as their size. We prepared this type of material by the nanocasting method using three different templates: a silica foam and two carbon templates derived from it using propylene or sucrose as carbon source. We investigated the influence of the template, the calcination temperature and of the conditions during template removal. We obtained HA materials with a surface area of up to 90 mg~(-1) and with an intergranular mesopore volume of up to 0.4 cm g~(-1). In this paper, we show for the first time that the synthesis of mesoporous HA from a mesoporous silica foam template allows eliminating the template at lower temperatures (in an alkaline medium), thus preventing the sintering of the HA. These materials have interesting properties for drug delivery applications. The protein adsorption and release capacities of these HAs were tested with two model proteins, bovine serum albumin (BSA), and Cytochrome C. These materials are an important milestone for future bone regeneration systems based on HA associated with human growth factor proteins.
机译:磷酸钙,尤其是羟基磷灰石Ca_(10)(PO_4)_6(OH)_2(HA),由于其生物相容性和良好的吸收特性而被广泛用于骨骼再生。然而,当它们与诸如生长因子的生物活性分子结合时,它们在植入时的性能得到改善。使用中孔HA可改善蛋白质的吸附和释放动力学,因为中孔的直径(2-50 nm)与它们的大小在同一范围内。我们使用三种不同的模板通过纳米浇铸法制备了这种类型的材料:二氧化硅泡沫和使用丙烯或蔗糖作为碳源从中衍生出的两个碳模板。我们调查了模板,煅烧温度和模板去除过程中条件的影响。我们获得了表面积高达90 mg〜(-1),晶间中孔体积高达0.4 cm g〜(-1)的HA材料。在本文中,我们首次表明,由介孔二氧化硅泡沫模板合成介孔HA可以在较低温度(在碱性介质中)除去模板,从而防止HA的烧结。这些材料具有用于药物输送应用的有趣特性。用两种模型蛋白牛血清白蛋白(BSA)和细胞色素C测试了这些HA的蛋白吸附和释放能力。这些材料是未来基于HA与人类生长因子蛋白相关的骨再生系统的重要里程碑。

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