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首页> 外文期刊>Polymers >The Influence of Calcium Glycerophosphate (GPCa) Modifier on Physicochemical, Mechanical, and Biological Performance of Polyurethanes Applicable as Biomaterials for Bone Tissue Scaffolds Fabrication
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The Influence of Calcium Glycerophosphate (GPCa) Modifier on Physicochemical, Mechanical, and Biological Performance of Polyurethanes Applicable as Biomaterials for Bone Tissue Scaffolds Fabrication

机译:甘油磷酸钙(GPCa)改性剂对用作生物材料制造骨组织支架的聚氨酯的物理化学,机械和生物学性能的影响

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In this paper we describe the synthesis of poly(ester ether urethane)s (PEEURs) by using selected raw materials to reach a biocompatible polyurethane (PU) for biomedical applications. PEEURs were synthesized by using aliphatic 1,6-hexamethylene diisocyanate (HDI), poly(ethylene glycol) (PEG), α,ω-dihydroxy(ethylene-butylene adipate) (Polios), 1,4-butanediol (BDO) as a chain extender and calcium glycerolphosphate salt (GPCa) as a modifier used to stimulate bone tissue regeneration. The obtained unmodified (PURs) and modified with GPCa (PURs-M) PEEURs were studied by various techniques. It was confirmed that urethane prepolymer reacts with GPCa modifier. Further analysis of the obtained PURs and PURs-M by Fourier transform infrared (FTIR) and Raman spectroscopy revealed the chemical composition typical for PUs by the confirmed presence of urethane bonds. Moreover, the FTIR and Raman spectra indicated that GPCa was incorporated into the main PU chain at least at one-side. The scanning electron microscopy (SEM) analysis of the PURs-M surface was in good agreement with the FTIR and Raman analysis due to the fact that inclusions were observed only at 20% of its surface, which were related to the non-reacted GPCa enclosed in the PUR matrix as filler. Further studies of hydrophilicity, mechanical properties, biocompatibility, short term-interactions, and calcification study lead to the final conclusion that the obtained PURs-M may by suitable candidate material for further scaffold fabrication. Scaffolds were prepared by the solvent casting/particulate leaching technique (SC/PL) combined with thermally-induced phase separation (TIPS). Such porous scaffolds had satisfactory pore sizes (36–100 μm) and porosity (77–82%) so as to be considered as suitable templates for bone tissue regeneration.
机译:在本文中,我们描述了通过使用选定的原料达到生物医学应用的生物相容性聚氨酯(PU)来合成聚(酯醚氨基甲酸酯)(PEEUR)的方法。通过使用脂肪族1,6-六亚甲基二异氰酸酯(HDI),聚(乙二醇)(PEG),α,ω-二羟基(乙烯-丁烯己二酸酯)(Polios),1,4-丁二醇(BDO)合成PEEURs扩链剂和甘油磷酸钙盐(GPCa)作为改性剂,用于刺激骨骼组织再生。通过各种技术研究获得的未修饰的(PUR)和用GPCa修饰的(PURs-M)PEEUR。证实氨基甲酸酯预聚物与GPCa改性剂反应。通过傅立叶变换红外(FTIR)和拉曼光谱对获得的PUR和PURs-M进行进一步分析,通过确认存在的氨基甲酸酯键,发现了PU的典型化学成分。此外,FTIR和拉曼光谱表明GPCa至少在一侧掺入到主PU链中。 PURs-M表面的扫描电子显微镜(SEM)分析与FTIR和拉曼分析非常吻合,原因是仅在其表面的20%处观察到夹杂物,这与未反应的GPCa封闭有关在PUR矩阵中作为填充物。对亲水性,机械性能,生物相容性,短期相互作用和钙化研究的进一步研究得出最终结论,即所获得的PURs-M可能是用于进一步制备支架的合适候选材料。通过溶剂浇铸/微粒浸出技术(SC / PL)结合热诱导相分离(TIPS)制备支架。这样的多孔支架具有令人满意的孔径(36-100μm)和孔隙率(77-82%),因此被认为是骨组织再生的合适模板。

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