National & Regional United Engineering Laboratory of Tissue Engineering, Department of Orthopedics, Southwest Hospital, Third Military Medical University, Chongqing 400038, PR China.
College of Chemistry and Chemical Engineering and Biological Engineering, Donghua University, Shanghai 201620, PR China.
Biomaterials. 2017 Aug;136:12-28. doi: 10.1016/j.biomaterials.2017.05.017. Epub 2017 May 10.
Hydrogel is a suitable scaffold for the nucleus pulposus (NP) regeneration. However, its unmatched mechanical properties lead to implant failure in late-stage disc degeneration because of structural failure and implant extrusion after long-term compression. In this study, we evaluated an interpenetrating network (IPN)-strengthened and toughened hydrogel for NP regeneration, using dextran and gelatin as the primary network while poly (ethylene glycol) as the secondary network. The aim of this study was to realize the NP regeneration using the hydrogel. To achieve this, we optimized its properties by adjusting the mass ratios of the secondary/primary networks and determining the best preparation conditions for NP regeneration in a series of biomechanical, cytocompatibility, tissue engineering, and in vivo study. We found the optimal formulation of the IPN hydrogel, at a secondary/primary network ratio of 1:4, exhibited high toughness (the compressive strain reached 86%). The encapsulated NP cells showed increasing proliferation, cell clustering and matrix deposition. Furthermore, the hydrogel could support long-term cell retention and survival in the rat IVDs. It facilitated rehydration and regeneration of porcine degenerative NPs. In conclusion, this study demonstrates the tough IPN hydrogel could be a promising candidate for functional disc regeneration in future.
水凝胶是一种适合用于髓核(NP)再生的支架。然而,由于结构失效和长期压缩后的植入物挤出,其不匹配的机械性能导致在晚期椎间盘退变中植入物失败。在这项研究中,我们评估了一种互穿网络(IPN)增强和增韧水凝胶,使用葡聚糖和明胶作为主网络,而聚乙二醇作为次网络。本研究的目的是使用水凝胶实现 NP 再生。为了实现这一目标,我们通过调整次/主网络的质量比并确定一系列生物力学、细胞相容性、组织工程和体内研究中 NP 再生的最佳制备条件来优化其性能。我们发现,次/主网络比为 1:4 的 IPN 水凝胶具有最佳的配方,表现出高韧性(压缩应变达到 86%)。包封的 NP 细胞表现出增殖增加、细胞聚集和基质沉积。此外,水凝胶可以在大鼠椎间盘内支持长期的细胞保留和存活。它促进了猪退变 NP 的再水化和再生。总之,这项研究表明,坚韧的 IPN 水凝胶可能是未来功能性椎间盘再生的有前途的候选物。