Sadeghianmaryan Ali, Naghieh Saman, Yazdanpanah Zahra, Alizadeh Sardroud Hamed, Sharma N K, Wilson Lee D, Chen Xiongbiao
Division of Biomedical Engineering, College of Engineering, University of Saskatchewan, Saskatoon, Saskatchewan, Canada; Department of Chemistry, Islamic Azad University, Ardabil Branch, Ardabil, Iran.
Division of Biomedical Engineering, College of Engineering, University of Saskatchewan, Saskatoon, Saskatchewan, Canada.
Int J Biol Macromol. 2022 Apr 15;204:62-75. doi: 10.1016/j.ijbiomac.2022.01.201. Epub 2022 Feb 3.
Three-dimensional (3D) printed hydrogel scaffolds enhanced with ceramics have shown potential applications for cartilage regeneration, but leaving biological and mechanical properties to be desired. This paper presents our study on the development of chitosan /alginate scaffolds with nano hydroxyapatite (nHA) by combining 3D printing and impregnating techniques, forming a hybrid, yet novel, structure of scaffolds for potential cartilage regeneration. First, we incorporated nHA into chitosan scaffold printing and studied the printability by examining the difference between the printed scaffolds and their designs. Then, we impregnated alginate with nHA into the printed chitosan scaffolds to forming a hybrid structure of scaffolds; and then characterized the scaffolds mechanically and biologically, with a focus on identifying the influence of nHA and alginate for potential cartilage regeneration. The results of compression tests on the scaffolds showed that the inclusion of nHA increased the elastic moduli of scaffolds; while the live/dead assay illustrated that nHA had a great effect on improving attachment and viability of ATCD5 cells on the scaffolds. Also, our results illustrated scaffolds with nHA impregnated in alginate hydrogel enhanced the cell viability and attachment. Furthermore, antibacterial activity of hybrid scaffolds was characterized with results indicating that the chitosan scaffolds had favourable antibacterial ability, which was further enhanced with the impregnated nHA. Taken together, our study has illustrated that chitosan/HA/alginate hybrid scaffolds are promising for cartilage regeneration and the methods developed to create hybrid scaffolds based on 3D printing and impregnating techniques, which can also be extended to fabricating scaffolds for other tissue engineering applications.
添加陶瓷增强的三维(3D)打印水凝胶支架已显示出在软骨再生方面的潜在应用,但生物和机械性能仍有待提高。本文介绍了我们通过结合3D打印和浸渍技术开发含纳米羟基磷灰石(nHA)的壳聚糖/藻酸盐支架的研究,形成了一种用于潜在软骨再生的混合且新颖的支架结构。首先,我们将nHA纳入壳聚糖支架打印中,并通过检查打印支架与其设计之间的差异来研究其可打印性。然后,我们将含nHA的藻酸盐浸渍到打印的壳聚糖支架中以形成支架的混合结构;接着对支架进行机械和生物学表征,重点是确定nHA和藻酸盐对潜在软骨再生的影响。对支架的压缩测试结果表明,添加nHA提高了支架的弹性模量;而活/死检测表明,nHA对改善ATCD5细胞在支架上的附着和活力有很大影响。此外,我们的结果表明,藻酸盐水凝胶中浸渍nHA的支架增强了细胞活力和附着。此外,对混合支架的抗菌活性进行了表征,结果表明壳聚糖支架具有良好的抗菌能力,用浸渍的nHA进一步增强了抗菌能力。综上所述,我们的研究表明壳聚糖/HA/藻酸盐混合支架在软骨再生方面很有前景,并且基于3D打印和浸渍技术开发的创建混合支架的方法,也可扩展到制造用于其他组织工程应用的支架。