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近红外光催化对关节炎滑膜微环境的调控

NIR-photocatalytic regulation of arthritic synovial microenvironment.

作者信息

Zhao Bin, Zeng Lingting, Chen Danyang, Xie Songqing, Jin Zhaokui, Li Guanglin, Tang Wei, He Qianjun

机构信息

School of Biomedical Engineering, Health Science Center, Shenzhen University, 1066 Xueyuan Road, Shenzhen, Guangdong 518060, China.

Center of Hydrogen Science, School of Materials Science and Engineering, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, China.

出版信息

Sci Adv. 2022 Oct 7;8(40):eabq0959. doi: 10.1126/sciadv.abq0959. Epub 2022 Oct 5.

Abstract

Synovial microenvironment (SME) plays a vital role in the formation of synovial pannus and the induction of cartilage destruction in arthritis. In this work, a concept of the photocatalytic regulation of SME is proposed for arthritis treatment, and monodispersive hydrogen-doped titanium dioxide nanorods with a rutile single-crystal structure are developed by a full-solution method to achieve near infrared-photocatalytic generation of hydrogen molecules and simultaneous depletion of overexpressed lactic acid (LA) for realizing SME regulation in a collagen-induced mouse model of rheumatoid arthritis. Mechanistically, locally generated hydrogen molecules scavenge overexpressed reactive oxygen species to mediate the anti-inflammatory polarization of macrophages, while the simultaneous photocatalytic depletion of overexpressed LA inhibits the inflammatory/invasive phenotypes of synoviocytes and macrophages and ameliorates the abnormal proliferation of synoviocytes, thereby remarkably preventing the synovial pannus formation and cartilage destruction. The proposed catalysis-mediated SME regulation strategy will open a window to realize facile and efficient arthritis treatment.

摘要

滑膜微环境(SME)在关节炎中滑膜血管翳的形成和软骨破坏的诱导过程中起着至关重要的作用。在这项工作中,提出了一种用于关节炎治疗的滑膜微环境光催化调节概念,并通过全溶液法制备了具有金红石单晶结构的单分散氢掺杂二氧化钛纳米棒,以实现近红外光催化产生氢分子并同时消耗过表达的乳酸(LA),从而在胶原诱导的类风湿性关节炎小鼠模型中实现滑膜微环境调节。从机制上讲,局部产生的氢分子清除过表达的活性氧,介导巨噬细胞的抗炎极化,而过表达乳酸的同时光催化消耗抑制滑膜细胞和巨噬细胞的炎症/侵袭表型,并改善滑膜细胞的异常增殖,从而显著防止滑膜血管翳形成和软骨破坏。所提出的催化介导的滑膜微环境调节策略将为实现简便有效的关节炎治疗打开一扇窗口。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6b40/9534508/113720d77eda/sciadv.abq0959-f1.jpg

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