Jo SeoYul, Lee JiUn, Lee Hyeongjin, Ryu Dongryeol, Kim GeunHyung
Department of Precision Medicine, Sungkyunkwan University School of Medicine, Suwon, Republic of Korea.
Department of Biotechnology and Bioinformatics, Korea University, Sejong, Republic of Korea.
NPJ Regen Med. 2023 Jun 10;8(1):30. doi: 10.1038/s41536-023-00307-1.
The fabrication of highly porous cell-loaded structures in tissue engineering applications has been a challenging issue because non-porous cell-laden struts can cause severe cell necrosis in the middle region owing to poor transport of nutrients and oxygen. In this study, we propose a versatile handheld 3D printer for the effective fabrication of porous cell-laden methacrylated gelatin (GelMa) with high porosity (≈97%) by air injection and a bubble-making system using mesh filters through which a mixture of air/GelMa bioink is passed. In particular, the pore size and foamability of the cell constructs could be manipulated using various processing parameters (rheological properties of GelMa, filter size and number, and air-bioink volume ratio). To demonstrate the feasibility of the cell construct as a tissue engineering substitute for muscle regeneration, in vitro cellular activities and in vivo regeneration ability of human adipose stem cells were assessed. The in vitro results demonstrated that the human adipose stem cells (hASCs) fabricated using the handheld 3D printer were alive and well-proliferated. Furthermore, the in vivo results showed that the hASCs-constructs directly printed from the handheld 3D printer showed significant restoration of functionality and efficient muscle regeneration in the volumetric muscle loss model of mice. Based on these results, the fabrication method of the porous cell-laden construct could be a promising tool for regenerating muscle tissues.
在组织工程应用中制造高度多孔的负载细胞结构一直是一个具有挑战性的问题,因为无孔的负载细胞支柱由于营养物质和氧气的运输不畅,可能会导致中间区域的细胞严重坏死。在本研究中,我们提出了一种多功能手持式3D打印机,通过空气注入和使用网状过滤器的气泡制造系统,有效制造具有高孔隙率(约97%)的多孔负载细胞甲基丙烯酸化明胶(GelMa),空气/GelMa生物墨水混合物通过该过滤器。特别是,可以使用各种加工参数(GelMa的流变特性、过滤器尺寸和数量以及空气-生物墨水体积比)来控制细胞构建体的孔径和发泡性。为了证明细胞构建体作为肌肉再生组织工程替代物的可行性,评估了人脂肪干细胞的体外细胞活性和体内再生能力。体外结果表明,使用手持式3D打印机制造的人脂肪干细胞(hASCs)存活且增殖良好。此外,体内结果表明,从手持式3D打印机直接打印的hASCs构建体在小鼠的体积性肌肉损失模型中显示出功能的显著恢复和有效的肌肉再生。基于这些结果,多孔负载细胞构建体的制造方法可能是一种有前途的肌肉组织再生工具。