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无定形焦磷酸盐对磷酸钙骨水泥吸收和骨生成的影响。

The effect of amorphous pyrophosphate on calcium phosphate cement resorption and bone generation.

机构信息

School of Chemical Engineering, University of Birmingham, Edgbaston, B15 2TT, UK.

出版信息

Biomaterials. 2013 Sep;34(28):6631-7. doi: 10.1016/j.biomaterials.2013.05.001. Epub 2013 Jun 7.

DOI:10.1016/j.biomaterials.2013.05.001
PMID:23747007
Abstract

Pyrophosphate ions are both inhibitors of HA formation and substrates for phosphatase enzymes. Unlike polyphosphates their hydrolysis results simultaneously in the complete loss of mineral formation inhibition and a localised elevation in orthophosphate ion concentration. Despite recent advances in our knowledge of the role of the pyrophosphate ion, very little is known about the effects of pyrophosphate on bone formation and even less is known about its local delivery. In this work we first developed a self setting pyrophosphate based calcium cement system with appropriate handling properties and then compared its in vivo degradation properties with those of a non-pyrophosphate containing control. Contrary to expectation, the presence of the pyrophosphate phase in the cement matrix did not inhibit mineralisation of the healing bone around the implant, but actually appeared to stimulate it. In vitro evidence suggested that enzymatic action accelerated dissolution of the inorganic pyrophosphate ions, causing a simultaneous loss of their mineralisation inhibition and a localised rise in supersaturation with respect to HA. This is thought to be a rare example of a biologically responsive inorganic material and these materials seem to be worthy of further investigation. Bioceramics to date have mainly been limited to orthophosphate, silicate and carbonate salts of calcium, here we report the successful application of a pyrophosphate material as a degradable osteoconductive bone repair cement.

摘要

焦磷酸盐离子既是 HA 形成的抑制剂,又是磷酸酶的底物。与多磷酸盐不同,它们的水解会同时导致矿化抑制的完全丧失和局部正磷酸盐离子浓度的升高。尽管我们对焦磷酸盐离子作用的认识最近有所进展,但对其对骨形成的影响知之甚少,甚至对其局部输送知之甚少。在这项工作中,我们首先开发了一种具有适当处理性能的自凝焦磷酸盐基钙水泥系统,然后将其体内降解性能与不含焦磷酸盐的对照物进行了比较。出乎意料的是,水泥基质中焦磷酸盐相的存在并没有抑制植入物周围愈合骨的矿化,反而似乎刺激了它。体外证据表明,酶的作用加速了无机焦磷酸盐离子的溶解,导致其矿化抑制作用同时丧失,以及相对于 HA 的过饱和度局部升高。这被认为是生物响应无机材料的一个罕见例子,这些材料似乎值得进一步研究。迄今为止,生物陶瓷主要局限于钙的正磷酸盐、硅酸盐和碳酸盐盐,在这里我们报告了成功应用焦磷酸盐材料作为可降解的骨传导性骨修复水泥。

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