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首页> 外文期刊>Materials science & engineering >Comparative investigation of porous nano-hydroxyapaptite/chitosan, nano-zirconia/chitosan and novel nano-calcium zirconate/chitosan composite scaffolds for their potential applications in bone regeneration
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Comparative investigation of porous nano-hydroxyapaptite/chitosan, nano-zirconia/chitosan and novel nano-calcium zirconate/chitosan composite scaffolds for their potential applications in bone regeneration

机译:多孔纳米羟基磷灰石/壳聚糖,纳米氧化锆/壳聚糖与新型纳米锆酸钙/壳聚糖复合支架在骨再生中的潜在应用的比较研究

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摘要

Zirconium (Zr) based bioceramic nanoparticles, as the filler material to chitosan (CS), for the development of composite scaffolds are less studied compared to hydroxyapatite nanoparticles. This is predominantly due to the biological similarity of nano-hydroxyapatite (nHA; Ca10(PO4)6(OH)2) with bone inorganic component. In this study, we compared the physical and biological properties of CS composite scaffolds hybridized with nHA, nano-zirconia (nZrO; ZrO2), and nano-calcium zirconate (nCZ; CaZrO3). For the first time in this study, the properties of CS-nCZ composite scaffolds have been reported. The porous composite scaffolds were developed using the freeze-drying technique. The compressive strength and modulus were in the range of 50–55 KPa and 0.75–0.95 MPa for composite scaffolds, significantly higher (p < 0.05), compared to CS alone scaffolds (28 KPa and 0.25 MPa) and were comparable among CS-nHA, CS-nZrO, and CS-nCZ scaffolds. Peak force quantitative nanomechanical mapping (PFQNM) using an atomic force microscope (AFM) showed that the Young's modulus of composite material was higher compared to only CS (p < 0.001), and the values were similar among the composite materials. One of the major issues in the use of Zr based bioceramic materials in bone tissue regeneration applications is their lower osteoblasts response. This study has shown that CS-nCZ supported higher proliferation of pre-osteoblasts compared to CS-nZrO and the spreading was more similar to that observed in CS-nHA scaffolds. Taken together, results show that the physical and biological properties, studied here, of CS composite with Zr based bio-ceramic was comparable with CS-nHA composite scaffolds and hence show the prospective of CS-nCZ for future bone tissue engineering applications.
机译:与羟基磷灰石纳米粒子相比,基于锆(Zr)的生物陶瓷纳米粒子作为壳聚糖(CS)的填充材料,用于开发复合支架。这主要是由于纳米羟基磷灰石(nHA; Ca10(PO4)6(OH)2)与骨无机成分的生物学相似性。在这项研究中,我们比较了与nHA,纳米氧化锆(nZrO; ZrO2)和纳米锆酸钙(nCZ; CaZrO3)杂交的CS复合支架的物理和生物学特性。在这项研究中,第一次报道了CS-nCZ复合支架的性能。使用冷冻干燥技术开发了多孔复合支架。复合支架的抗压强度和模量在50-55 KPa和0.75-0.95 MPa范围内,与单独使用CS的支架(28 KPa和0.25 MPa)相比,显着更高(p <0.05),并且与CS-nHA相当,CS-nZrO和CS-nCZ支架。使用原子力显微镜(AFM)进行的峰力定量纳米力学标测(PFQNM)表明,复合材料的杨氏模量比仅CS高(p <0.001),并且在复合材料中该值相似。在骨组织再生应用中使用基于Zr的生物陶瓷材料的主要问题之一是它们对成骨细胞的响应较低。这项研究表明,与CS-nZrO相比,CS-nCZ支持前成骨细胞更高的增殖,其扩散与CS-nHA支架中的扩散更为相似。两者合计,结果表明,此处研究的具有Zr基生物陶瓷的CS复合材料的物理和生物学特性与CS-nHA复合支架相当,因此表明CS-nCZ在未来骨组织工程应用中的前景。

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