Wu Ruibang, Huang Leizhen, Xia Qinghong, Liu Zheng, Huang Yong, Jiang Yulin, Wang Juehan, Ding Hong, Zhu Ce, Song Yueming, Liu Limin, Zhang Li, Feng Ganjun
Department of Orthopedic Surgery and Orthopedic Research Institute, West China Hospital, Sichuan University, Chengdu, 610041, Sichuan, China.
Operating Room of Anesthesia Surgery Center, West China Hospital, Sichuan University / West China School of Nursing, Sichuan University, Chengdu, 610041, China.
Mater Today Bio. 2023 Jul 17;22:100731. doi: 10.1016/j.mtbio.2023.100731. eCollection 2023 Oct.
Intervertebral disc degeneration (IDD) is a major contributing factor to both lower back and neck pain. As IDD progresses, the intervertebral disc (IVD) loses its ability to maintain its disc height when subjected to axial loading. This failure in the weight-bearing capacity of the IVD is a characteristic feature of degeneration. Natural polymer-based hydrogel, derived from biological polymers, possesses biocompatibility and is able to mimic the structure of extracellular matrix, enabling them to support cellular behavior. However, their mechanical performance is relatively poor, thus limiting their application in IVD regeneration. In this study, we developed an injectable composite hydrogel, namely, Mel-MBG/SA, which is similar to natural weight-bearing IVD. Mesoporous bioactive glasses not only enhance hydrogels, but also act as carriers for melatonin (Mel) to suppress inflammation during IDD. The Mel-MBG/SA hydrogel further provides a mixed system with sustained Mel release to alleviate IL-1β-induced oxidative stress and relieve inflammation associated with IDD pathology. Furthermore, our study shows that this delivery system can effectively suppress inflammation in the rat tail model, which is expected to further promote IVD regeneration. This approach presents a novel strategy for promoting tissue regeneration by effectively modulating the inflammatory environment while harnessing the mechanical properties of the material.
椎间盘退变(IDD)是导致下背部和颈部疼痛的主要因素。随着IDD的进展,椎间盘(IVD)在承受轴向负荷时失去维持其椎间盘高度的能力。IVD承重能力的这种丧失是退变的一个特征。基于天然聚合物的水凝胶源自生物聚合物,具有生物相容性,能够模拟细胞外基质的结构,从而支持细胞行为。然而,它们的机械性能相对较差,因此限制了它们在IVD再生中的应用。在本研究中,我们开发了一种可注射复合水凝胶,即Mel-MBG/SA,它类似于天然承重IVD。介孔生物活性玻璃不仅增强水凝胶,还作为褪黑素(Mel)的载体,在IDD期间抑制炎症。Mel-MBG/SA水凝胶进一步提供了一个具有持续Mel释放的混合系统,以减轻IL-1β诱导的氧化应激并缓解与IDD病理相关的炎症。此外,我们的研究表明,这种递送系统可以在大鼠尾巴模型中有效抑制炎症,有望进一步促进IVD再生。这种方法提出了一种通过有效调节炎症环境同时利用材料的机械性能来促进组织再生的新策略。