College of Life Sciences, Xinyang Normal University , Xinyang , China.
Department of Mechanical Engineering, Member of Flanders Make, KU Leuven (Catholic University of Leuven) , Leuven , Belgium.
J Biomater Sci Polym Ed. 2019 Dec;30(17):1636-1657. doi: 10.1080/09205063.2019.1654210. Epub 2019 Sep 11.
The chitosan/gelatin hydrogel incorporated with biphasic calcium phosphate nanoparticles (BCP-NPs) as scaffold (CGB) for bone tissue engineering was reported in this article. Such nanocomposite hydrogels were fabricated by using cycled freeze-thawing method, of which physicochemical and biological properties were regulated by adjusting the weight ratio of chitosan/gelatin/BCP-NPs. The needle-like BCP-NPs were dispersed into composites uniformly, and physically cross-linked with chitosan and gelatin, which were identified via Scanning Electron Microscope (SEM) images and Fourier Transform Infrared Spectroscopy (FT-IR) analysis. The porosity, equilibrium swelling ratio, and compressive strength of CGB scaffolds were mainly influenced by the BCP-NPs concentration. degradation analysis in simulated body fluids (SBF) displayed that CGB scaffolds were degraded up to at least 30 wt% in one month. Also, CCK-8 analysis confirmed that the prepared scaffolds had a good cytocompatibility through in culturing with bone marrow mesenchymal stem cells (BMSCs). Finally, animal experiments revealed that new bone tissue was observed inside the scaffolds, and gradually increased with increasing months, when implanted CGB scaffolds into large necrotic lesions of rabbit femoral head. The above results suggested that prepared CGB nanocomposites had the potential to be applied in bone tissue engineering.
本文报道了一种壳聚糖/明胶水凝胶,其中掺入了双相磷酸钙纳米粒子(BCP-NPs)作为支架(CGB)用于骨组织工程。通过使用循环冷冻-解冻方法制备了这种纳米复合水凝胶,通过调整壳聚糖/明胶/BCP-NPs 的重量比来调节其物理化学和生物性质。针状 BCP-NPs 均匀分散在复合材料中,并通过扫描电子显微镜(SEM)图像和傅里叶变换红外光谱(FT-IR)分析与壳聚糖和明胶物理交联。CGB 支架的孔隙率、平衡溶胀比和压缩强度主要受 BCP-NPs 浓度的影响。在模拟体液(SBF)中的降解分析表明,CGB 支架在一个月内至少降解了 30wt%。此外,CCK-8 分析通过在骨髓间充质干细胞(BMSCs)培养中证实了制备的支架具有良好的细胞相容性。最后,动物实验表明,当将 CGB 支架植入兔股骨头大坏死病变部位时,支架内观察到新的骨组织,并随着时间的推移逐渐增加。上述结果表明,所制备的 CGB 纳米复合材料具有应用于骨组织工程的潜力。