Kankala Ranjith Kumar, Lu Feng-Jun, Liu Chen-Guang, Zhang Shan-Shan, Chen Ai-Zheng, Wang Shi-Bin
Institute of Biomaterials and Tissue Engineering, Huaqiao University, Xiamen 361021, China.
Fujian Provincial Key Laboratory of Biochemical Technology, Huaqiao University, Xiamen 361021, China.
Materials (Basel). 2018 Aug 9;11(8):1390. doi: 10.3390/ma11081390.
In recent times, cartilage defects have been the most common athletic injuries, often leading to dreadful consequences such as osteoarthritis, pain, joint deformities, and other symptoms. It is also evident that damage to articular cartilage is often difficult to recover or self-heal because of poor vascular, nervous, and lymphatic supplies. Moreover, cartilage cells have poor regeneration ability and high maturity. Inspired by these facts and the rapid advances in the field of tissue engineering (TE), we fabricated highly porous three-dimensional (3D) scaffold architectures based on cell-responsive polymeric inks, i.e., sodium alginate and gelatin (SA-Gel, 1:3 ratio), by a novel 3D printing method. Moreover, the effect of various processing parameters was systematically investigated. The printed scaffolds of polymer composites gels with excellent transparency, moderate viscosity, and excellent fluid properties showed good surface morphology, better thermal stability and swelling effect, and unique interconnected porous architectures at the optimized operating parameters. In vitro cell proliferation experiments of these cytocompatible scaffolds showed the excellent adhesion rate and growth behavior of chondrocytes. In addition, the porous architectures facilitated the efficient distribution of cells with only a few remaining on the surface, which was confirmed by confocal laser scanning microscopic (CLSM) observations. Icariin (ICA) addition at a concentration of 10 μg/mL further significantly enhanced the proliferation of chondrocytes. We envision that these cell-responsive polymeric inks in the presence of growth regulators like ICA may have potential in engineering complex tissue constructs toward diverse applications in TE.
近年来,软骨缺损一直是最常见的运动损伤,常常导致诸如骨关节炎、疼痛、关节畸形等可怕后果以及其他症状。同样明显的是,由于关节软骨的血管、神经和淋巴供应不足,其损伤往往难以恢复或自我愈合。此外,软骨细胞的再生能力差且成熟度高。受这些事实以及组织工程(TE)领域快速发展的启发,我们通过一种新型3D打印方法,基于细胞响应性聚合物墨水(即海藻酸钠和明胶,SA - Gel,比例为1:3)制备了高度多孔的三维(3D)支架结构。此外,还系统研究了各种加工参数的影响。在优化的操作参数下,打印出的具有优异透明度、适度粘度和良好流体性能的聚合物复合凝胶支架表现出良好的表面形态、更好的热稳定性和溶胀效果以及独特的相互连接的多孔结构。这些具有细胞相容性的支架的体外细胞增殖实验表明软骨细胞具有优异的粘附率和生长行为。此外,多孔结构促进了细胞的有效分布,只有少数细胞残留在表面,这通过共聚焦激光扫描显微镜(CLSM)观察得到证实。添加浓度为10μg/mL的淫羊藿苷(ICA)进一步显著增强了软骨细胞的增殖。我们设想,在像ICA这样的生长调节剂存在下,这些细胞响应性聚合物墨水在构建复杂组织构建体以用于TE的各种应用中可能具有潜力。