Chu Hanyu, Zhang Kexin, Rao Zilong, Song Panpan, Lin Zudong, Zhou Jing, Yang Liqun, Quan Daping, Bai Ying
Key Laboratory for Polymeric Composite & Functional Materials of Ministry of Education, School of Chemistry, Sun Yat-sen University, Guangzhou, Guangdong Province, China.
Guangdong Engineering Technology Research Centre for Functional Biomaterials, Key Laboratory for Polymeric Composite & Functional Materials of Ministry of Education, School of Materials Science and Engineering, Sun Yat-sen University, Guangzhou, Guangdong Province, China.
Biomater Transl. 2023 Jun 28;4(2):115-127. doi: 10.12336/biomatertransl.2023.02.006. eCollection 2023.
The printability of bioink and post-printing cell viability is crucial for extrusion-based bioprinting. A proper bioink not only provides mechanical support for structural fidelity, but also serves as suitable three-dimensional (3D) microenvironment for cell encapsulation and protection. In this study, a hydrogel-based composite bioink was developed consisting of gelatin methacryloyl (GelMA) as the continuous phase and decellularised extracellular matrix microgels (DMs) as the discrete phase. A flow-focusing microfluidic system was employed for the fabrication of cell-laden DMs in a high-throughput manner. After gentle mixing of the DMs and GelMA, both rheological characterisations and 3D printing tests showed that the resulting DM-GelMA hydrogel preserved the shear-thinning nature, mechanical properties, and good printability from GelMA. The integration of DMs not only provided an extracellular matrix-like microenvironment for cell encapsulation, but also considerable shear-resistance for high post-printing cell viability. The DM sizes and inner diameters of the 3D printer needles were correlated and optimised for nozzle-based extrusion. Furthermore, a proof-of-concept bioink composedg of RSC96 Schwann cells encapsulated DMs and human umbilical vein endothelial cell-laden GelMA was successfully bioprinted into 3D constructs, resulting in a modular co-culture system with distinct cells/materials distribution. Overall, the modular DM-GelMA bioink provides a springboard for future precision biofabrication and will serve in numerous biomedical applications such as tissue engineering and drug screening.
生物墨水的可打印性以及打印后细胞的活力对于基于挤出的生物打印至关重要。合适的生物墨水不仅为结构保真度提供机械支撑,还作为细胞封装和保护的合适三维(3D)微环境。在本研究中,开发了一种基于水凝胶的复合生物墨水,其连续相为甲基丙烯酰化明胶(GelMA),离散相为脱细胞细胞外基质微凝胶(DMs)。采用流动聚焦微流控系统以高通量方式制备载有细胞的DMs。在将DMs与GelMA温和混合后,流变学表征和3D打印测试均表明,所得的DM - GelMA水凝胶保留了GelMA的剪切变稀特性、机械性能和良好的可打印性。DMs的整合不仅为细胞封装提供了类似细胞外基质的微环境,还为打印后细胞的高活力提供了相当的抗剪切能力。针对基于喷嘴的挤出,对3D打印机针头的DM尺寸和内径进行了关联和优化。此外,一种由包裹有RSC96雪旺细胞的DMs和载有人脐静脉内皮细胞的GelMA组成的概念验证生物墨水成功地被生物打印成3D结构,形成了具有不同细胞/材料分布的模块化共培养系统。总体而言,模块化的DM - GelMA生物墨水为未来的精确生物制造提供了一个跳板,并将服务于众多生物医学应用,如组织工程和药物筛选。