Department of Spine Surgery, Honghui Hospital, Xi'an Jiaotong University, Xi'An, Shaanxi, P.R. China.
Department of Sports Medicine, Honghui Hospital, Xi'an Jiao Tong University, Xi'An, Shaanxi, P.R. China.
Int J Nanomedicine. 2024 Oct 21;19:10661-10684. doi: 10.2147/IJN.S469302. eCollection 2024.
Hydrogels are multifunctional platforms. Through reasonable structure and function design, they use material engineering to adjust their physical and chemical properties, such as pore size, microstructure, degradability, stimulus-response characteristics, etc. and have a variety of biomedical applications. Hydrogel three-dimensional (3D) printing has emerged as a promising technique for the precise deposition of cell-laden biomaterials, enabling the fabrication of intricate 3D structures such as artificial vertebrae and intervertebral discs (IVDs). Despite being in the early stages, 3D printing techniques have shown great potential in the field of regenerative medicine for the fabrication of various transplantable tissues within the human body. Currently, the utilization of engineered hydrogels as carriers or scaffolds for treating intervertebral disc degeneration (IVDD) presents numerous challenges. However, it remains an indispensable multifunctional manufacturing technology that is imperative in addressing the escalating issue of IVDD. Moreover, it holds the potential to serve as a micron-scale platform for a diverse range of applications. This review primarily concentrates on emerging treatment strategies for IVDD, providing an in-depth analysis of their merits and drawbacks, as well as the challenges that need to be addressed. Furthermore, it extensively explores the biological properties of hydrogels and various nanoscale biomaterial inks, compares different prevalent manufacturing processes utilized in 3D printing, and thoroughly examines the potential clinical applications and prospects of integrating 3D printing technology with hydrogels.
水凝胶是多功能平台。通过合理的结构和功能设计,利用材料工程来调整其物理和化学性质,如孔径、微观结构、降解性、刺激响应特性等,并具有多种生物医学应用。水凝胶三维(3D)打印已成为一种有前途的细胞负载生物材料的精确沉积技术,能够制造出复杂的 3D 结构,如人工椎体和椎间盘(IVD)。尽管处于早期阶段,但 3D 打印技术在再生医学领域具有很大的潜力,可用于制造体内各种可移植组织。目前,工程水凝胶作为载体或支架用于治疗椎间盘退行性变(IVDD)存在许多挑战。然而,它仍然是一种不可或缺的多功能制造技术,对于解决不断加剧的 IVDD 问题至关重要。此外,它还有潜力作为微尺度平台,应用于各种领域。本文主要关注新兴的 IVDD 治疗策略,深入分析它们的优缺点以及需要解决的挑战。此外,还广泛探讨了水凝胶的生物学特性和各种纳米级生物材料墨水,比较了 3D 打印中使用的不同流行制造工艺,并彻底研究了将 3D 打印技术与水凝胶结合的潜在临床应用和前景。