Enhanced Elastic Multifunctional Dual-Network Hydrogel Microspheres for the Treatment of Intervertebral Disc Degeneration through Inflammation Modulation and Apoptosis Inhibition

透明质酸 生物物理学 炎症 细胞内 化学 材料科学 细胞凋亡 内化 纳米囊 自愈水凝胶 药物输送 促炎细胞因子 细胞生物学 细胞 椎间盘 苯硼酸 纳米技术 柠檬酸 纳米颗粒 微粒 京尼平 生物化学 细胞培养
作者
Fei Ma,Chuan Guo,Yuheng Liu,Daqiang Zheng,Walter Munesu Chirume,Dengbo Yao,Weiqiang Lan,Zhen Zhao,Fan Chen,Yu Wang,Qingquan Kong
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:17 (51): 69032-69053 被引量:4
标识
DOI:10.1021/acsami.5c17783
摘要

Modulating the local inflammatory environment and restoring nucleus pulposus cell (NPC) function are essential strategies for mitigating IVDD. In this study, a microgel-based delivery system for microRNA therapeutics, termed POCM@MCCP (PMCCP), was developed. The system employs dual-network hydrogel microspheres composed of chitosan, citric acid, and poly(vinyl alcohol) (CCP), further functionalized with metal-phenolic networks (MPNs) formed from strontium ions (Sr 2 + ) and epigallocatechin gallate (EGCG). This microgel enables dynamic, stimulus-responsive loading of phenylboronic acid-modified oxidized hyaluronic acid (PBA-oHA)-coated miR-155/chito-oligosaccharide (COS) complexes (POCM) through boronate ester linkages. The mechanical elasticity and stability of the CCP microspheres support the consistent and prolonged release of miR-155 even under mechanical compression. Incorporation of MPNs further endows the system with the ability to modulate and suppress the inflammatory microenvironment. In oxidative microenvironments, the boronate bonds cleave, triggering the release of POCM and its subsequent CD44 receptor-mediated internalization by NPCs. Subsequently, miR-155 and COS are released within the acidic intracellular space, modulating the Bcl-2/Bax/Caspase-3 signaling cascade and scavenging intracellular ROS, respectively. Both in vitro and in vivo IVDD models demonstrated that this multifunctional platform effectively suppresses inflammation and restores NPC function, highlighting its potential as a promising therapeutic strategy for IVDD.
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