Department of Orthopaedics, Lanzhou University Second Hospital, Lanzhou, Gansu 730000, P. R. China.
Department of Spine Surgery, Honghui Hospital, Xi'an Jiao tong University, Shaanxi 710000, P. R. China.
J Mater Chem B. 2022 Aug 4;10(30):5696-5722. doi: 10.1039/d2tb01066f.
As our research on the physiopathology of intervertebral disc degeneration (IVD degeneration, IVDD) has advanced and tissue engineering has rapidly evolved, cell-, biomolecule- and nucleic acid-based hydrogel grafting strategies have been widely investigated for their ability to overcome the harsh microenvironment of IVDD. However, such single delivery systems suffer from excessive external dimensions, difficult performance control, the need for surgical implantation, and difficulty in eliminating degradation products. Stimulus-responsive composite hydrogels have good biocompatibility and controllable mechanical properties and can undergo solution-gel phase transition under certain conditions. Their combination with ready-to-use particles to form a multiscale delivery system may be a breakthrough for regenerative IVD strategies. In this paper, we focus on summarizing the progress of research on the stimulus response mechanisms of regenerative IVD-related biomaterials and their design as macro-, micro- and nanoparticles. Finally, we discuss multi-scale delivery systems as bioinks for bio-3D printing technology for customizing personalized artificial IVDs, which promises to take IVD regenerative strategies to new heights.
随着我们对椎间盘退行性变(IVD 退行性变,IVDD)的病理生理学研究的进展和组织工程的快速发展,基于细胞、生物分子和核酸的水凝胶嫁接策略因其能够克服 IVDD 恶劣的微环境而得到了广泛的研究。然而,这种单一的输送系统存在着尺寸过大、性能控制困难、需要手术植入以及难以消除降解产物等问题。刺激响应性复合水凝胶具有良好的生物相容性和可控制的机械性能,并且可以在某些条件下发生溶液-凝胶相转变。将其与即用型颗粒结合形成多尺度输送系统,可能是再生 IVD 策略的一个突破。本文主要总结了再生 IVD 相关生物材料的刺激响应机制及其作为宏观、微观和纳米粒子的设计研究进展。最后,我们讨论了多尺度输送系统作为生物 3D 打印技术的生物墨水,用于定制个性化人工 IVD,有望将 IVD 再生策略提升到一个新的高度。