Raja Iruthayapandi Selestin, Kang Moon Sung, Hong Suck Won, Bae Hojae, Kim Bongju, Hwang Yu-Shik, Cha Jae Min, Han Dong-Wook
BIO-IT Fusion Technology Research Institute, Pusan National University, Busan 46241, South Korea.
Department of Cogno-Mechatronics Engineering, College of Nanoscience & Nanotechnology, Pusan National University, Busan 46241, South Korea.
Int J Bioprint. 2022 Nov 4;9(1):635. doi: 10.18063/ijb.v9i1.635. eCollection 2023.
181Biofabrication approaches, such as three-dimensional (3D) bioprinting of hydrogels, have recently garnered increasing attention, especially in the construction of 3D structures that mimic the complexity of tissues and organs with the capacity for cytocompatibility and post-printing cellular development. However, some printed gels show poor stability and maintain less shape fidelity if parameters such as polymer nature, viscosity, shear-thinning behavior, and crosslinking are affected. Therefore, researchers have incorporated various nanomaterials as bioactive fillers into polymeric hydrogels to address these limitations. Carbon-family nanomaterials (CFNs), hydroxyapatites, nanosilicates, and strontium carbonates have been incorporated into printed gels for application in various biomedical fields. In this review, following the compilation of research publications on CFNs-containing printable gels in various tissue engineering applications, we discuss the types of bioprinters, the prerequisites of bioink and biomaterial ink, as well as the progress and challenges of CFNs-containing printable gels in this field.
181生物制造方法,如三维(3D)水凝胶生物打印,最近越来越受到关注,特别是在构建模拟组织和器官复杂性、具有细胞相容性和打印后细胞发育能力的3D结构方面。然而,如果聚合物性质、粘度、剪切变稀行为和交联等参数受到影响,一些打印凝胶会表现出较差的稳定性且形状保真度较低。因此,研究人员已将各种纳米材料作为生物活性填料掺入聚合物水凝胶中,以解决这些局限性。碳族纳米材料(CFNs)、羟基磷灰石、纳米硅酸盐和碳酸锶已被掺入打印凝胶中,用于各种生物医学领域。在这篇综述中,在汇编了关于含CFNs的可打印凝胶在各种组织工程应用中的研究出版物后,我们讨论了生物打印机的类型、生物墨水和生物材料墨水的先决条件,以及该领域含CFNs的可打印凝胶的进展和挑战。