Han Jonghyeuk, Kim Da Sol, Jang Ho, Kim Hyung-Ryong, Kang Hyun-Wook
Biomedical Engineering, School of Life Sciences, Ulsan National Institute of Science and Technology (UNIST), Ulsan, South Korea.
Department of Oral Biochemistry, School of Dentistry, Pusan National University, Yangsan, South Korea.
J Tissue Eng. 2019 May 19;10:2041731419845849. doi: 10.1177/2041731419845849. eCollection 2019 Jan-Dec.
Numerous approaches have been introduced to regenerate artificial dental tissues. However, conventional approaches are limited when producing a construct with three-dimensional patient-specific shapes and compositions of heterogeneous dental tissue. In this research, bioprinting technology was applied to produce a three-dimensional dentin-pulp complex with patient-specific shapes by inducing localized differentiation of human dental pulp stem cells within a single structure. A fibrin-based bio-ink was designed for bioprinting with the human dental pulp stem cells. The effects of fibrinogen concentration within the bio-ink were investigated in terms of printability, human dental pulp stem cell compatibility, and differentiation. The results show that micro-patterns with human dental pulp stem cells could be achieved with more than 88% viability. Its odontogenic differentiation was also regulated according to the fibrinogen concentration. Based on these results, a dentin-pulp complex having patient-specific shape was produced by co-printing the human dental pulp stem cell-laden bio-inks with polycaprolactone, which is a bio-thermoplastic used for producing the overall shape. After culturing with differentiation medium for 15 days, localized differentiation of human dental pulp stem cells in the outer region of the three-dimensional cellular construct was successfully achieved with localized mineralization. This result demonstrates the possibility to produce patient-specific composite tissues for tooth tissue engineering using three-dimensional bioprinting technology.
已经引入了许多方法来再生人工牙组织。然而,在制造具有三维患者特异性形状和异质牙组织组成的构建体时,传统方法存在局限性。在本研究中,应用生物打印技术通过在单一结构内诱导人牙髓干细胞的局部分化来制造具有患者特异性形状的三维牙本质-牙髓复合体。设计了一种基于纤维蛋白的生物墨水用于与人牙髓干细胞进行生物打印。从可打印性、人牙髓干细胞相容性和分化方面研究了生物墨水中纤维蛋白原浓度的影响。结果表明,人牙髓干细胞的微图案可以在存活率超过88%的情况下实现。其成牙本质分化也根据纤维蛋白原浓度进行调节。基于这些结果,通过将负载人牙髓干细胞的生物墨水与聚己内酯共打印,制造出具有患者特异性形状的牙本质-牙髓复合体,聚己内酯是一种用于制造整体形状的生物热塑性材料。在用分化培养基培养15天后,在三维细胞构建体的外部区域成功实现了人牙髓干细胞的局部分化,并伴有局部矿化。这一结果证明了使用三维生物打印技术为牙齿组织工程制造患者特异性复合组织的可能性。