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钼纳米点作为光热疗法治疗骨关节炎的抗氧化剂。

Molybdenum nanodots act as antioxidants for photothermal therapy osteoarthritis.

作者信息

Shi Guang, Lan Shenghui, Zhang Qi, Wang Junwu, Shu Feihong, Hao Zhuowen, Chen Tianhong, Zhu Mengyue, Chen Renxin, Chen Jiayao, Wu Zijian, Wu Bo, Zou Zhenwei, Li Jingfeng

机构信息

Department of Orthopaedics, Zhongnan Hospital of Wuhan University, Wuhan, Hubei Province, 430071, China.

Department of Orthopaedics, The Eighth People's Hospital, Jiangsu University, Shanghai, 200235, China.

出版信息

Biomaterials. 2025 Apr;315:122909. doi: 10.1016/j.biomaterials.2024.122909. Epub 2024 Oct 22.

Abstract

Osteoarthritis (OA) manifests as the degradation of cartilage and remodeling of subchondral bone. Restoring homeostasis within the joint is imperative for alleviating OA symptoms. Current interventions primarily target singular aspects, such as anti-aging, inflammation inhibition, free radical scavenging, and regeneration of cartilage and subchondral bone. Herein, we developed molybdenum nanodots (MNDs) as bionic photothermal nanomaterials to mimic the antioxidant synthase to concurrently protected cartilage and facilitate subchondral bone regeneration. With near-infrared (NIR) irradiation, MNDs effectively eliminate reactive oxygen and nitrogen species (ROS/RNS) from OA chondrocytes, thereby reversed mitochondrial dysfunction, mitigating chondrocyte senescence, and simultaneously suppresses inflammation, hence preserving the inherent homeostasis between cartilage matrix synthesis and degradation while circumventing safety concerns. RNA sequencing of OA chondrocytes treated with MNDs-NIR revealed the reinstatement of chondrocyte functionality, activation of antioxidant enzymes, anti-aging properties, and regulation of inflammation. NIR irradiation induces thermogenesis and synergistically promotes subchondral bone regeneration via MNDs, as validated through histological assessments and microcomputed tomography (Micro-CT) scans. MNDs-NIR effectively attenuate cellular senescence and inhibit inflammation in vivo, while also remodeling mitochondrial dynamics by upregulating fusion proteins and inhibiting fission proteins, thereby regulating the oxidative stress microenvironment. Additionally, MNDs-NIR exhibited remarkable therapeutic effects in alleviating articular cartilage degeneration in an OA mouse model, evidenced by a 1.67-fold reduction in subchondral bone plate thickness, an 88.57 % decrease in OARSI score, a 5.52-fold reduction in MMP13 expression, and a 6.80-fold increase in Col II expression. This novel disease-modifying approach for OA utilizing MNDs-NIR offers insight and a paradigm for improving mitochondrial dysfunction by regulating the accumulation of mitochondrial ROS and ultimately alleviating cellular senescence. Moreover, the dual-pronged therapeutic approach of MNDs-NIR, which addresses both cartilage erosion and subchondral bone lesions in OA, represents a highly promising strategy for managing OA.

摘要

骨关节炎(OA)表现为软骨降解和软骨下骨重塑。恢复关节内的稳态对于缓解OA症状至关重要。目前的干预措施主要针对单一方面,如抗衰老、抑制炎症、清除自由基以及软骨和软骨下骨的再生。在此,我们开发了钼纳米点(MNDs)作为仿生光热纳米材料,以模拟抗氧化合酶,同时保护软骨并促进软骨下骨再生。通过近红外(NIR)照射,MNDs有效地从OA软骨细胞中消除活性氧和氮物种(ROS/RNS),从而逆转线粒体功能障碍,减轻软骨细胞衰老,同时抑制炎症,从而在规避安全问题的同时维持软骨基质合成与降解之间的固有稳态。用MNDs-NIR处理的OA软骨细胞的RNA测序揭示了软骨细胞功能的恢复、抗氧化酶的激活、抗衰老特性以及炎症调节。NIR照射诱导产热,并通过MNDs协同促进软骨下骨再生,这通过组织学评估和微计算机断层扫描(Micro-CT)扫描得到验证。MNDs-NIR在体内有效减轻细胞衰老并抑制炎症,同时还通过上调融合蛋白和抑制裂变蛋白来重塑线粒体动力学,从而调节氧化应激微环境。此外,MNDs-NIR在减轻OA小鼠模型中的关节软骨退变方面表现出显著的治疗效果,软骨下骨板厚度降低1.67倍、骨关节炎研究学会国际(OARSI)评分降低88.57%、基质金属蛋白酶13(MMP13)表达降低5.52倍以及II型胶原(Col II)表达增加6.80倍证明了这一点。这种利用MNDs-NIR治疗OA的新型疾病修饰方法为通过调节线粒体ROS的积累来改善线粒体功能障碍并最终减轻细胞衰老提供了见解和范例。此外,MNDs-NIR的双管齐下治疗方法,解决了OA中的软骨侵蚀和软骨下骨病变问题,是一种极有前景的OA治疗策略。

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