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Structural characterisation of hypoxia-mimicking bioactive glasses

机译:低氧模拟生物活性玻璃的结构表征

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Nickel and cobalt are both known to stimulate the hypoxia-inducible factor-1 (HIF-1α), thus significantly improving blood vessel formation in tissue engineering applications. We have manufactured nickel and cobalt doped bioactive glasses to act as a controlled delivery mechanism of these ions. The resultant structural consequences have been investigated using the methods of isotopic and isomorphic substitution applied to neutron diffraction. The structural sites present will be intimately related to their release properties in physiological fluids such as plasma and saliva, and hence the bioactivity of the material. Detailed structural knowledge is therefore a prerequisite for optimising material design. Results show that nickel and cobalt adopt a mixed structural role within these bioactive glasses occupying both network-forming (tetrahedral) and network-modifying (5-fold) geometries. Two thirds of the Ni (or Co) occupies a five-fold geometry with the remaining third in a tetrahedral environment. A direct comparison of the primary structural correlations (e.g. Si—O, Ca-O, Na-O and O-Si-O) between the archetypal 45S5 Bioglass~R and the Ni and Co glasses studied here reveal no significant differences. This indicates that the addition of Ni (or Co) will have no adverse effects on the existing structure, and thus on in vitro/in vivo dissolution rates and therefore bioactivity of these glasses.
机译:众所周知,镍和钴都会刺激缺氧诱导因子1(HIF-1α),从而显着改善组织工程应用中的血管形成。我们已经制造了镍和钴掺杂的生物活性玻璃,以作为这些离子的受控传递机制。使用应用于中子衍射的同位素和同构取代方法研究了所得的结构后果。存在的结构部位将与它们在诸如血浆和唾液的生理流体中的释放特性密切相关,并因此与材料的生物活性密切相关。因此,详细的结构知识是优化材料设计的先决条件。结果表明,镍和钴在这些生物活性玻璃中扮演着混合结构的角色,既占据了网络形成(四面体)的形状,又占据了改变网络形状(5倍)的几何形状。 Ni(或Co)的三分之二占据了五倍的几何形状,其余三分之一处于四面体环境。在这里研究的原型45S5 Bioglass〜R与Ni和Co玻璃之间的主要结构相关性(例如Si-O,Ca-O,Na-O和O-Si-O)的直接比较没有显着差异。这表明添加Ni(或Co)将不会对现有结构产生不利影响,从而不会对这些玻璃的体外/体内溶解速率以及生物活性产生不利影响。

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