Viscoelastic Hydrogel Promotes Disc Mechanical Homeostasis Repair and Delays Intervertebral Disc Degeneration via the Yes-Associated Protein Pathway.

IF 8.1 Q1 ENGINEERING, BIOMEDICAL
Biomaterials research Pub Date : 2025-03-04 eCollection Date: 2025-01-01 DOI:10.34133/bmr.0150
Zilin Yu, Kang Wu, Chunyang Fan, Jiale Wang, Fengcheng Chu, Wei He, Zhongwei Ji, Yongkang Deng, Di Hua, Yao Zhang, Dechun Geng, Xiexing Wu, Haiqing Mao
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Abstract

Intervertebral disc degeneration (IDD) process is accompanied by overactive inflammation and mechanical instability of the nucleus pulposus (NP). Current treatments do not fully restore the biomechanical environment of discs, limiting their therapeutic efficacy. Thus, novel strategies are required to combat IDD. Hydrogels have outstanding biocompatibility and mechanical properties, most importantly, absorbing and retaining water similar to human NP tissue, showing a unique superiority in the treatment of IDD. In this study, we employed a viscoelastic ionic hydrogel (VIG) composed of polyvinyl alcohol and magnesium ions to investigate the therapeutic effect for IDD. VIG demonstrated an optimal degradation rate and NP-biomimetic swelling behavior in vitro. In the rat model of IDD, VIG-injected discs demonstrated mechanical properties approximating those of native discs, including stiffness, relaxation, and dissipation capacity. Furthermore, finite element analysis demonstrated that VIG improved biomechanical function of degenerated discs. VIG effectively inhibited the progression of IDD in the rat model by increasing extracellular matrix synthesis and decreasing matrix metalloproteinase-13 (MMP-13) expression. Moreover, VIG promoted proliferation and differentiation of NP cells in response to extracellular mechanical changes through the integrin-YAP signaling pathway. These findings suggest that VIG has the potential to modulate the NP inflammatory microenvironment and restore mechanical stability in IDD. This work represents a straightforward and promising strategy for IDD treatment.

粘弹性水凝胶通过yes相关蛋白途径促进椎间盘机械稳态修复并延缓椎间盘退变。
椎间盘退变(IDD)过程伴随着过度活跃的炎症和髓核(NP)的机械不稳定。目前的治疗方法不能完全恢复椎间盘的生物力学环境,限制了其治疗效果。因此,需要新的战略来防治缺碘症。水凝胶具有优异的生物相容性和力学性能,最重要的是具有类似于人体NP组织的吸水和保水性,在治疗IDD方面显示出独特的优势。本研究采用一种由聚乙烯醇和镁离子组成的粘弹性离子水凝胶(VIG)来研究其治疗缺乏症的效果。VIG在体外表现出最佳的降解率和np仿生肿胀行为。在IDD大鼠模型中,注射vigg的椎间盘显示出接近天然椎间盘的力学性能,包括刚度、松弛和耗散能力。此外,有限元分析表明,VIG改善了退变椎间盘的生物力学功能。VIG通过增加细胞外基质合成和降低基质金属蛋白酶-13 (MMP-13)的表达,有效抑制模型大鼠IDD的进展。此外,VIG通过整合素- yap信号通路促进NP细胞的增殖和分化,响应细胞外力学变化。这些发现表明,VIG具有调节NP炎症微环境和恢复IDD机械稳定性的潜力。这项工作为IDD治疗提供了一种直接而有希望的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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