首页> 美国卫生研究院文献>Materials >Development of Useful Biomaterial for Bone Tissue Engineering by Incorporating Nano-Copper-Zinc Alloy (nCuZn) in Chitosan/Gelatin/Nano-Hydroxyapatite (Ch/GHAp) Scaffold
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Development of Useful Biomaterial for Bone Tissue Engineering by Incorporating Nano-Copper-Zinc Alloy (nCuZn) in Chitosan/Gelatin/Nano-Hydroxyapatite (Ch/GHAp) Scaffold

机译:通过在壳聚糖/明胶/纳米羟基磷灰石(Ch / G / nHAp)支架中掺入纳米铜锌合金(nCuZn)开发用于骨组织工程的有用生物材料

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摘要

Ceramic and metallic nanoparticles can improve the mechanical and biological properties of polymeric scaffolds for bone tissue engineering (BTE). In this work, nanohydroxyapatite (nHAp) and nano-copper-zinc alloy (nCuZn) were added to a chitosan/gelatin (Ch/G) scaffold in order to investigate the effects on morphological, physical, and biocompatibility properties. Scaffolds were fabricated by a freeze-drying technique using different pre-freezing temperatures. Microstructure and morphology were studied by scanning electron microscopy (SEM), glass transition (Tg) was studied using differential scanning calorimetry (DSC), cell growth was estimated by MTT assay, and biocompatibility was examined in vitro and in vivo by histochemistry analyses. Scaffolds and nanocomposite scaffolds presented interconnected pores, high porosity, and pore size appropriate for BTE. Tg of Ch/G scaffolds was diminished by nanoparticle inclusion. Mouse embryonic fibroblasts (MEFs) cells loaded in the Ch/GHApCuZn nanocomposite scaffold showed suitable behavior, based on cell adhesion, cell growth, alkaline phosphatase (ALP) activity as a marker of osteogenic differentiation, and histological in vitro cross sections. In vivo subcutaneous implant showed granulation tissue formation and new tissue infiltration into the scaffold. The favorable microstructure, coupled with the ability to integrate nanoparticles into the scaffold by freeze-drying technique and the biocompatibility, indicates the potential of this new material for applications in BTE.
机译:陶瓷和金属纳米粒子可以改善用于骨骼组织工程(BTE)的聚合物支架的机械和生物学特性。在这项工作中,将纳米羟基磷灰石(nHAp)和纳米铜锌合金(nCuZn)添加到壳聚糖/明胶(Ch / G)支架中,以研究其对形态,物理和生物相容性特性的影响。通过使用不同的预冷冻温度的冷冻干燥技术来制造支架。通过扫描电子显微镜(SEM)研究了微观结构和形态,使用差示扫描量热法(DSC)研究了玻璃化转变(Tg),通过MTT测定估计了细胞生长,并且通过组织化学分析检查了体内和体外的生物相容性。支架和纳米复合支架呈现出相互连通的孔,高孔隙率和适合BTE的孔径。 Ch / G支架的Tg通过包含纳米颗粒而降低。 Ch / G / nHAp / nCuZn纳米复合支架中的小鼠胚胎成纤维细胞(MEF)细胞显示出合适的行为,基于细胞粘附,细胞生长,碱性磷酸酶(ALP)活性作为成骨分化的标志物和组织学体外横截面。体内皮下植入物显示肉芽组织形成和新的组织浸润进入支架。良好的微观结构以及通过冷冻干燥技术将纳米颗粒整合到支架中的能力和生物相容性,表明了这种新材料在BTE中的应用潜力。

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