Mei Quanjing, Rao Jingdong, Bei Ho Pan, Liu Yaxiong, Zhao Xin
Department of Biomedical Engineering, The Hong Kong Polytechnic University, Hung Hom, Hong Kong, China.
Jihua Laboratory, Foshan, Guangdong, China.
Int J Bioprint. 2021 Jun 24;7(3):367. doi: 10.18063/ijb.v7i3.367. eCollection 2021.
Three-dimensional (3D) bioprinting has become a promising strategy for bone manufacturing, with excellent control over geometry and microarchitectures of the scaffolds. The bioprinting ink for bone and cartilage engineering has thus become the key to developing 3D constructs for bone and cartilage defect repair. Maintaining the balance of cellular viability, drugs or cytokines' function, and mechanical integrity is critical for constructing 3D bone and/or cartilage scaffolds. Photo-crosslinkable hydrogel is one of the most promising materials in tissue engineering; it can respond to light and induce structural or morphological transition. The biocompatibility, easy fabrication, as well as controllable mechanical and degradation properties of photo-crosslinkable hydrogel can meet various requirements of the bone and cartilage scaffolds, which enable it to serve as an effective bio-ink for 3D bioprinting. Here, in this review, we first introduce commonly used photo-crosslinkable hydrogel materials and additives (such as nanomaterials, functional cells, and drugs/cytokine), and then discuss the applications of the 3D bioprinted photo-crosslinkable hydrogel scaffolds for bone and cartilage engineering. Finally, we conclude the review with future perspectives about the development of 3D bioprinting photo-crosslinkable hydrogels in bone and cartilage engineering.
三维(3D)生物打印已成为骨制造的一种有前景的策略,能够对支架的几何形状和微观结构进行出色的控制。因此,用于骨与软骨工程的生物打印墨水已成为开发用于骨与软骨缺损修复的3D构建体的关键。维持细胞活力、药物或细胞因子功能以及机械完整性之间的平衡对于构建3D骨和/或软骨支架至关重要。光可交联水凝胶是组织工程中最有前景的材料之一;它能对光做出反应并诱导结构或形态转变。光可交联水凝胶的生物相容性、易于制备以及可控的机械和降解性能能够满足骨与软骨支架的各种要求,这使其能够作为3D生物打印的有效生物墨水。在此综述中,我们首先介绍常用的光可交联水凝胶材料和添加剂(如纳米材料、功能细胞以及药物/细胞因子),然后讨论3D生物打印的光可交联水凝胶支架在骨与软骨工程中的应用。最后,我们以对骨与软骨工程中3D生物打印光可交联水凝胶发展的未来展望来结束本综述。