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首页> 外文期刊>ACS nano >Synergistic Oxygen Generation and Reactive Oxygen Species Scavenging by Manganese Ferrite/Ceria Co-decorated Nanoparticles for Rheumatoid Arthritis Treatment
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Synergistic Oxygen Generation and Reactive Oxygen Species Scavenging by Manganese Ferrite/Ceria Co-decorated Nanoparticles for Rheumatoid Arthritis Treatment

机译:通过锰铁氧体/二氧化铈合作纳米粒子清除协同氧气生成和反应性氧物种用于类风湿性关节炎治疗

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摘要

Poor O-2 supply to the infiltrated immune cells in the joint synovium of rheumatoid arthritis (RA) up-regulates hypoxia-inducible factor (HIF-1 alpha) expression and induces reactive oxygen species (ROS) generation, both of which exacerbate synovial inflammation. Synovial inflammation in RA can be resolved by eliminating pro-inflammatory M1 macrophages and inducing anti-inflammatory M2 macrophages. Because hypoxia and ROS in the RA synovium play a crucial role in the induction of Ml macrophages and reduction of M2 macrophages, herein, we develop manganese ferrite and ceria nanoparticle-anchored mesoporous silica nanoparticles (MFC-MSNs) that can synergistically scavenge ROS and produce O-2 for reducing M1 macrophage levels and inducing M2 macrophages for RA treatment. MFC-MSNs exhibit a synergistic effect on O-2 generation and ROS scavenging that is attributed to the complementary reaction of ceria nanoparticles (NPs) that can scavenge intermediate hydroxyl radicals generated by manganese ferrite NPs in the process of O-2 generation during the Fenton reaction, leading to the efficient polarization of M1 to M2 macrophages both in vitro and in vivo. Intra-articular administration of MFC-MSNs to rat RA models alleviated hypoxia, inflammation, and pathological features in the joint. Furthermore, MSNs were used as a drug-delivery vehicle, releasing the anti-rheumatic drug methotrexate in a sustained manner to augment the therapeutic effect of MFC-MSNs. This study highlights the therapeutic potential of MFC-MSNs that simultaneously generate O-2 and scavenge ROS, subsequently driving inflammatory macrophages to the anti-inflammatory subtype for RA treatment.
机译:在类风湿性关节炎的联合渗透悬浮症(RA)的渗透悬浮症(RA)中缺血性免疫细胞供应差,抑制缺氧诱导因子(HIF-1α)表达,并诱导反应性氧物质(ROS)产生,两者都加剧了滑膜炎症。通过消除促炎M1巨噬细胞和诱导抗炎M2巨噬细胞,可以解决RA中的滑膜炎症。由于RA Synovium中的缺氧和ROS在诱导M1巨噬细胞和M2巨噬细胞的诱导中起到至关重要的作用,我们开发了可以协同删除ROS和生产的锰铁氧体和二氧化铈纳米粒子锚定的中孔纳米粒子(MFC-MSNS) o-2减少M1巨噬细胞水平并诱导M2巨噬细胞进行RA治疗。 MFC-MSN对O-2代和ROS清除具有协同作用,归因于CERIA纳米颗粒(NPS)的互补反应,其能够在FENTON期间在O-2代的过程中清除锰铁氧体NP中的中间体羟基自由基反应,导致体外和体内M1至M2巨噬细胞的有效极化。关节内施用MFC-MSNS对大鼠RA模型缓解关节中的缺氧,炎症和病理特征。此外,MSNS被用作药物输送载体,以持续的方式释放抗风湿药物甲氨蝶呤,以增加MFC-MSN的治疗效果。本研究突出了MFC-MSN的治疗潜力,其同时产生O-2和清除ROS,随后将炎症巨噬细胞驱动到抗炎亚型以进行RA治疗。

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