Qin Wen, Li Chenkai, Liu Chun, Wu Siyu, Liu Jun, Ma Jiayi, Chen Wenyang, Zhao Hongbin, Zhao Xiubo
Medical Research Centre, Changzhou Second People's Hospital Affiliated to Nanjing Medical University, Changzhou, China.
School of Pharmacy, Changzhou University, Changzhou, China.
J Biomater Appl. 2022 May;36(10):1838-1851. doi: 10.1177/08853282211067646. Epub 2022 Feb 23.
Tissue-engineered bone material is one of the effective methods to repair bone defects, but the application is restricted in clinical because of the lack of excellent scaffolds that can induce bone regeneration as well as the difficulty in making scaffolds with personalized structures. 3D printing is an emerging technology that can fabricate bespoke 3D scaffolds with precise structure. However, it is challenging to develop the scaffold materials with excellent printability, osteogenesis ability, and mechanical strength. In this study, graphene oxide (GO), attapulgite (ATP), type I collagen (Col I) and polyvinyl alcohol were used as raw materials to prepare composite scaffolds via 3D bioprinting. The composite materials showed excellent printability. The microcosmic architecture and properties was characterized by scanning electron microscopy, Fourier transform infrared and thermal gravimetric analyzer, respectively. To verify the biocompatibility of the scaffolds, the viability, proliferation and osteogenic differentiation of Bone Marrow Stromal Cells (BMSCs) on the scaffolds were assessed by CCK-8, Live/Dead staining and Real-time PCR . The composited scaffolds were then implanted into the skull defects on rat for bone regeneration. Hematoxylin-eosin staining, Masson staining and immunohistochemistry staining were carried out to evaluate the regeneration of bone tissue.The results showed that GO/ATP/COL scaffolds have been demonstrated to possess controlled porosity, water absorption, biodegradability and good apatite-mineralization ability. The scaffold consisting of 0.5% GO/ATP/COL have excellent biocompatibility and was able to promote the growth, proliferation and osteogenic differentiation of mouse BMSCs . Furthermore, the 0.5% GO/ATP/COL scaffolds were also able to promote bone regeneration of in rat skull defects. Our results illustrated that the 3D printed GO/ATP/COL composite scaffolds have good mechanical properties, excellent cytocompatibility for enhanced mouse BMSCs adhesion, proliferation, and osteogenic differentiation. All these advantages made it potential as a promising biomaterial for osteogenic reconstruction.
组织工程骨材料是修复骨缺损的有效方法之一,但由于缺乏能够诱导骨再生的优良支架以及制造具有个性化结构支架的困难,其在临床上的应用受到限制。3D打印是一种新兴技术,能够制造具有精确结构的定制3D支架。然而,开发具有优异可打印性、成骨能力和机械强度的支架材料具有挑战性。在本研究中,氧化石墨烯(GO)、凹凸棒石(ATP)、I型胶原(Col I)和聚乙烯醇被用作原材料,通过3D生物打印制备复合支架。复合材料表现出优异的可打印性。分别通过扫描电子显微镜、傅里叶变换红外光谱和热重分析仪对微观结构和性能进行了表征。为了验证支架的生物相容性,通过CCK-8、活/死染色和实时PCR评估了骨髓基质细胞(BMSCs)在支架上的活力、增殖和成骨分化。然后将复合支架植入大鼠颅骨缺损处进行骨再生。进行苏木精-伊红染色、Masson染色和免疫组织化学染色以评估骨组织的再生情况。结果表明,GO/ATP/COL支架具有可控的孔隙率、吸水性、生物降解性和良好的磷灰石矿化能力。由0.5% GO/ATP/COL组成的支架具有优异的生物相容性,能够促进小鼠BMSCs的生长、增殖和成骨分化。此外,0.5% GO/ATP/COL支架还能够促进大鼠颅骨缺损处的骨再生。我们的结果表明,3D打印的GO/ATP/COL复合支架具有良好的机械性能、优异的细胞相容性,可增强小鼠BMSCs的粘附、增殖和成骨分化。所有这些优点使其有可能成为一种有前途的用于骨再生重建的生物材料。