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In vitro degradation of calcium phosphates: Effect of multiscale porosity, textural properties and composition

机译:磷酸钙的体外降解:多尺度孔隙度,纹理性质和组成的影响

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Graphical abstract Display Omitted Abstract The capacity of calcium phosphates to be replaced by bone is tightly linked to their resorbability. However, the relative importance of some textural parameters on their degradation behavior is still unclear. The present study aims to quantify the effect of composition, specific surface area (SSA), and porosity at various length scales (nano-, micro- and macroporosity) on the in vitro degradation of different calcium phosphates. Degradation studies were performed in an acidic medium to mimic the osteoclastic environment. Small degradations were found in samples with interconnected nano- and micropores with sizes below 3 μm although they were highly porous (35–65%), with maximum weight loss of 8 wt%. Biomimetic calcium deficient hydroxyapatite, with high SSA and low crystallinity, presented the highest degradation rates exceeding even the more soluble β-TCP. A dependence of degradation on SSA was indisputable when porosity and pore sizes were increased. The introduction of additional macroporosity with pore interconnections above 20 μm significantly impacted degradation, more markedly in the substrates with high SSA (15 m 2 /g), whereas in sintered substrates with low SSA (1 m 2 /g) it resulted just in a linear increase of degradation. Up to 30 % of degradation was registered in biomimetic substrates, compared to 15 % in β-TCP or 8 % in sintered hydroxyapatite. The incorporation of carbonate in calcium deficient hydroxyapatite did not increase its degradation rate. Overall, the study highlights the importance of textural properties, which can modulate or even outweigh the effect of other features such as the solubility of the compounds. Statement of Significance The physicochemical features of calcium phosphates are crucial to tune biological events like resorption during bone remodeling. Understanding in vitro resorption can help to predict the in vivo behavior. Besides chemical composition, other parameters such as porosity and specific surface area have a strong influence on resorption. The complexity of isolating the contribution of each parameter lies in the close interrelation between them. In this work, a multiscale study was proposed to discern the extent to which each parameter influences degradation in a variety of calcium phosphates, using an acidic medium to resemble the osteoclastic environment. The results emphasize the importance of textural properties, which can modulate or even outweigh the effect of the intrinsic solubility of the compounds. ]]>
机译:图形摘要显示省略摘要骨骼所取代的磷酸钙容量与其可再吸收性紧密相关。然而,一些纹理参数对他们的退化行为的相对重要性尚不清楚。本研究旨在量化组合物,比表面积(SSA)和各种长度(纳米,微孔和大孔隙)在不同磷酸钙的体外降解中的效果。在酸性介质中进行降解研究以模仿骨质细胞环境。在具有低于3μm的互连纳米和微孔的样品中发现了小的降解,尽管它们具有高度多孔(35-65%),但最大减肥为8wt%。具有高SSA和低结晶度的染色钙缺乏羟基磷灰石,呈现出甚至更可溶的β-TCP的降解速率最高。当孔隙率和孔径增加时,降解对SSA的依赖性是无可争议的。引入具有高于20μm以上的孔互连的额外大孔隙率显着撞击劣化,在具有高SSA(& 15m 2 / g)的基材中更明显,而在具有低SSA的烧结底物中(& 1m 2 / g)导致劣化的线性增加。在仿生基材中登记了高达30%的降解,相比于β-TCP或烧结羟基磷灰石中的15%或8%。在缺乏羟基磷灰石中掺入碳酸钙的掺入未提高其降解速率。总体而言,该研究突出了纹理性质的重要性,其可以调节或甚至超过诸如化合物的溶解度的其他特征的效果。重要性陈述磷酸钙的物理化学特征对于调谐骨重塑期间的吸收等生物事件至关重要。理解体外吸收可以有助于预测体内行为。除了化学成分外,其他参数如孔隙率和比表面积,对吸收有很大的影响。隔离每个参数贡献的复杂性在于它们之间的密切相互关系。在这项工作中,提出了一种多尺度研究,以辨别每个参数影响各种磷酸钙在各种磷酸钙中降解的程度,以类似于破骨细胞环境。结果强调纹理性质的重要性,其可以调节或甚至超过化合物的内在溶解度的效果。 ]]>

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