Peng Yu, Xu Peng, Hui Sun, Qiangwei Xin, Han Kang, Peng Wang, Yao Zhao, Xinyuan Xu, Guangwu Zhou, Jing Xie and Jianshu Li
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This engineered cartilage-armor can prevent enzymatic cartilage degradation (nearly 100% resistance to catabolic enzymes) and provide durable lubrication properties (COF < 0.013 for 500 cycles). An autophagy-activation process, absent in previous biomimetic lubricants, enhances the enzymatic activity of the tailored cartilage-armor, offering effective anti-oxidant properties to suppress oxidative stress. By inhibiting the PI3K-Akt/NF-κB signaling pathway, chondrocytes protected by the tailored armor can secrete a cartilage matrix even in inflammatory microenvironments. In OA rat models, osteophyte formation and the inflammatory response have been inhibited by the cartilage-armor, demonstrating a therapeutic effect comparable to most drug-loaded systems. This study underscores the potential of tailoring cartilage-armor with the cartilage targeting and autophagy-activating properties in integrating offensive–defensive mechanisms for cartilage remodeling. 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引用次数: 0
摘要
骨关节炎(OA)使关节软骨丧失功能,已影响到数百万人。内部氧化压力、外部润滑不足和降解酶的侵袭抑制了软骨的自我修复能力。为了克服这些挑战,我们设计了一种量身定制的软骨盔甲来改善发炎的软骨,这种盔甲是通过一种新型的胶原蛋白 II 型(Col II)结合肽共轭齐聚物(PSB-b-PColBP,PSP)来实现的。通过模仿天然润滑蛋白,PSP 可靶向软骨表面,在原位形成水合盔甲。这种量身定制的软骨盔甲可防止软骨的酶降解(对分解酶的降解率约为 100%),并提供持久的润滑特性(500 次循环的 COF < 0.013)。自噬激活过程是以前的仿生润滑剂所不具备的,它是对定制软骨护甲的酶活性的补充,从而发挥有效的抗氧化特性,抑制氧化应激。通过抑制 PI3K-Akt/NF-κB 信号通路,软骨细胞在定制盔甲的保护下可以在炎症微环境中分泌软骨基质。在 OA 大鼠身上,软骨盔甲抑制了骨质增生的形成和炎症反应,其治疗效果与大多数药物负载系统相当。这项研究强调了定制具有软骨靶向和自噬激活特性的软骨铠甲在整合软骨重塑的攻防过程中的潜力,这也是临床治疗 OA 的另一种策略。
Inspired by lubricin: a tailored cartilage-armor with durable lubricity and autophagy-activated antioxidation for targeted therapy of osteoarthritis†
Osteoarthritis (OA), which disables articular cartilage, affects millions of people. The self-healing capacity is inhibited by internal oxidative stress and external lubrication deficiency and enzymatic degradation. To overcome these challenges, a tailored cartilage-armor is designed to ameliorate the inflamed cartilage, which is implemented by a novel collagen type II (Col II)-binding peptide conjugated zwitterionic polymer (PSB-b-PColBP, PSP). By mimicking natural lubricin, PSP specifically targets the cartilage surface and forms an in situ hydration armor. This engineered cartilage-armor can prevent enzymatic cartilage degradation (nearly 100% resistance to catabolic enzymes) and provide durable lubrication properties (COF < 0.013 for 500 cycles). An autophagy-activation process, absent in previous biomimetic lubricants, enhances the enzymatic activity of the tailored cartilage-armor, offering effective anti-oxidant properties to suppress oxidative stress. By inhibiting the PI3K-Akt/NF-κB signaling pathway, chondrocytes protected by the tailored armor can secrete a cartilage matrix even in inflammatory microenvironments. In OA rat models, osteophyte formation and the inflammatory response have been inhibited by the cartilage-armor, demonstrating a therapeutic effect comparable to most drug-loaded systems. This study underscores the potential of tailoring cartilage-armor with the cartilage targeting and autophagy-activating properties in integrating offensive–defensive mechanisms for cartilage remodeling. This represents an alternative strategy for clinical OA therapy.