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Surface functionalization of cuttlefish bone-derived biphasic calcium phosphate scaffolds with polymeric coatings

机译:墨鱼骨源性双相磷酸钙支架与聚合物涂层的表面官能化

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Cuttlefish bone (CB) has been explored as biomaterial in the bone tissue-engineering field due to its unique porous structure and capacity of the aragonite mineral to be hydrothermally converted into calcium phosphates (CaPs). In the present study, undoped and ion (Sr2+, Mg2+ and/or Zn2+) doped biphasic calcium phosphate (BCP) scaffolds were prepared by hydrothermal transformation (HT, 200 degrees C, 24 h) of CB. The obtained scaffolds were sintered and then coated with two commercial polymers, poly(epsilon-caprolactone) (PCL) or poly(DL-lactide) (PDLA), and with two synthesized ones, a poly(ester amide) (PEA) or a poly(ester urea) (PEU) in order to improve their compressive strength. The scaffolds were characterized by X-ray diffraction (XRD) coupled with structural Rietveld refinement, Fourier transform infrared (FTIR) spectroscopy, and scanning electron microscopy (SEM). The results demonstrate that CB could be entirely transformed into BCPs in the presence or absence of doping elements. The initial CB structure was preserved and the polymeric coatings did not jeopardize the interconnected porous structure. Furthermore, the polymeric coatings enhanced the compressive strength of the scaffolds. The in vitro bio-mineralization upon immersing the scaffolds into simulated body fluid (SBF) demonstrated the formation of bone-like apatite surface layers in both uncoated and coated scaffolds. Overall, the produced scaffolds exhibit promising properties for bone tissue engineering applications.
机译:由于其独特的多孔结构和化石矿物质的容量,在骨组织 - 工程领域中被探索为生物材料的生物材料,并将其含有水道矿物质的独特的多孔结构和能量转化为磷酸钙(盖子)。在本研究中,通过CB的水热转化(HT,200℃,24小时)的CB的水热转化(HT,200摄氏度)制备未掺杂和离子(SR2 +,Mg2 +和/或Zn2 +)支架。将获得的支架烧结,然后用两种商业聚合物,聚(ε-己内酯)(PCL)或聚(DL-丙交酯)(PDLA)涂覆,并用两个合成的支架,聚(酯酰胺)或a聚(酯尿素)(PEU)以提高它们的抗压强度。通过X射线衍射(XRD)的特征在于与结构Rietveld改进,傅里叶变换红外(FTIR)光谱(FTIR)光谱(SEM)的X射线衍射(XRD)表征。结果表明CB可以在存在或不存在掺杂元素的情况下完全转化为BCP。保存初始CB结构,聚合物涂层没有危及相互连接的多孔结构。此外,聚合物涂层增强了支架的抗压强度。将支架浸入模拟体液(SBF)中的体外生物矿化证明了在未涂覆和涂覆的支架中形成骨状磷灰石表面层。总的来说,所产生的支架表现出对骨组织工程应用的有希望的性质。

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