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Highly flexible and degradable dual setting systems based on PEG-hydrogels and brushite cement

机译:基于PEG - 水凝胶和石笔水泥的高度柔性可降解的双设定系统

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With respect to the composition of natural bone, we established a degradable dual setting system of different poly(ethylene glycol) (PEG)-based hydrogels combined with a brushite cement. The idea was to reinforce the inorganic calcium phosphate mineral phase with an organic, polymeric phase to alter the cement’s properties towards ductility and elasticity. Extremely flexible samples were producedviathis dual setting approach with a fully reversible elasticity of the samples containing high molecular weight PEG-based hydrogel precursors. Using the decalcifying agent EDTA, the whole inorganic phase was dissolved due to Ca2+-complexation and dimensionally stable hydrogels were obtained, indicating a homogenous polymeric phase within the composites. This was also confirmed by SEM-analysis, where no discontinuities or agglomerations of the phase were observed. Additional XRD-measurements proved a significant influence of the coherent polymeric matrix on the conversion from β-TCP/MCPA to brushite with a decrease in signal intensity. The results confirmed a parallelly running process of setting reaction and gelation without an inhibition of the conversion to brushite and the formation of interpenetrating networks of hydrogel and cement. The strengths of this newly developed dual setting system are based on the material degradability as well as flexibility, which can be a promising tool for bone regeneration applications in non-load bearing craniomaxillofacial defects. Statement of SignificanceBrushite based calcium phosphate cements (CPCs) are known as bone replacement materials, which degradein vivoand are replaced by native bone. However, the pure inorganic material shows a brittle fracture behavior. Here, the addition of a polymeric phase can influence the mechanical properties to create more ductile and flexible materials. This polymeric phase should ideally form during cement setting by a polymerization reaction to achieve high polymer loads without altering cement viscosity and it should be degradablein vivosimilar to the cement itself. Therefore, we developed a dual setting system based on simultaneous cement setting of brushite and lactide modified poly(ethylene glycol) dimethacrylate (PEG-PLLA-DMA)-based hydrogel. It was evident that the gels form a continuous phase within the cement after radical polymerization with a strong reduction of cement brittleness.
机译:关于天然骨的组成,我们建立了不同聚(乙二醇)(PEG)的水凝胶的可降解双凝固系统,所述水凝胶结合刷石水泥。该思想是用有机聚合物相加强无机磷酸钙矿物相,以改变水泥的延展性和弹性的性能。产生极其柔性的样品是生产的,具有含有高分子量PEG水凝胶前体的样品的完全可逆弹性的方法。使用癸化剂剂EDTA,由于CA2 + - 复杂化合物,并获得尺寸稳定的水凝胶,在复合材料中表示尺寸稳定的水凝胶。这也通过SEM分析证实,在那里没有观察到相阶段的不连续性或凝聚。额外的XRD测量结果证明了相干聚合物基质对从β-TCP / MCPA转化为褐岩的显着影响,随着信号强度的降低。结果证实了设定反应和凝胶的平行运行过程,而不会抑制转化对黑石和水凝胶和水泥的互穿网络的形成。这种新开发的双设定系统的优点是基于材料可降解性以及灵活性,这可以是用于耐载颅内缺陷中的骨再生应用的有希望的工具。基于意义的伯类磷酸钙水泥(CPC)被称为骨置换材料,其中沥青素vivoand被天然骨代替。然而,纯无机材料显示出脆性断裂行为。这里,添加聚合物相可以影响机械性能以产生更多的延展岩和柔性材料。这种聚合物相应在通过聚合反应在水泥设定过程中理想地形成,以在不改变水泥粘度的情况下达到高分子载荷,并且它应该是可降解到水泥本身的可降解蛋白。因此,我们开发了一种基于黑铅矿和丙交酯改性聚(乙二醇)二甲基丙烯酸酯(PEG-PLA-DMA)的水凝胶的双设定系统。显而易见的是,在自由基聚合后,凝胶在水泥中形成连续相,具有强大的水泥脆性。

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