铜铂介导的氧空位工程氧化铈具有更强的 SOD/CAT 模拟活性,可调节骨关节炎治疗的微环境。

IF 10.6 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Journal of Nanobiotechnology Pub Date : 2024-08-18 DOI:10.1186/s12951-024-02678-z
Junxu Yang, Shihui Xiao, Jiejia Deng, Yuquan Li, Hao Hu, Jiawei Wang, Chun Lu, Guanhua Li, Li Zheng, Qingjun Wei, Jingping Zhong
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引用次数: 0

摘要

氧化铈(CeO2)纳米球的酶活性有限,阻碍了其在催化治疗中的进一步应用,但它们具有 "氧化开关",可通过增加氧空位来增强其催化活性。在本研究中,我们根据缺陷工程策略,通过在 CeO2 纳米球中引入双金属铜(Cu)和铂(Pt)以增加氧空位,开发出 PtCuOX/CeO2-X 纳米酶,作为高效的 SOD/CAT 模拟物,试图结合近红外(NIR)辐照来调节骨关节炎(OA)治疗的微环境。正如预期的那样,Cu 和 Pt 提高了 CeO2 的 Ce3+/Ce4+ 比值,从而显著增强了氧空位,同时 CeO2 (111) 促进了 Cu 和 Pt 的均匀分散。通过降低氧空位的形成能、促进电子转移、提高中间产物的吸附能和降低反应活化能,强金属载体相互作用协同赋予了 PtCuOX/CeO2-X 纳米酶高效的 SOD/CAT 类活性。此外,纳米酶还具有优异的光热转换效率(55.41%)。此外,PtCuOX/CeO2-X 抗氧化系统还能有效清除细胞内的 ROS 和 RNS,保护线粒体功能,抑制炎症因子,从而减少软骨细胞凋亡。体内实验证明了 PtCuOX/CeO2-X 的生物安全性及其对 OA 的有效抑制作用。特别是,近红外辐射进一步增强了其效果。从机理上讲,PtCuOX/CeO2-X 纳米酶通过抑制 ROS/Rac-1/核因子卡巴-B(NF-κB)信号通路,降低了与 ras 相关的 C3 肉毒毒素底物 1(Rac-1)和 p-p65 蛋白表达以及 ROS 水平,从而重塑了炎症微环境。这项研究引入了可应用于炎症性疾病的新临床概念和观点。
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Oxygen vacancy-engineered cerium oxide mediated by copper-platinum exhibit enhanced SOD/CAT-mimicking activities to regulate the microenvironment for osteoarthritis therapy.

Cerium oxide (CeO2) nanospheres have limited enzymatic activity that hinders further application in catalytic therapy, but they have an "oxidation switch" to enhance their catalytic activity by increasing oxygen vacancies. In this study, according to the defect-engineering strategy, we developed PtCuOX/CeO2-X nanozymes as highly efficient SOD/CAT mimics by introducing bimetallic copper (Cu) and platinum (Pt) into CeO2 nanospheres to enhance the oxygen vacancies, in an attempt to combine near-infrared (NIR) irradiation to regulate microenvironment for osteoarthritis (OA) therapy. As expected, the Cu and Pt increased the Ce3+/Ce4+ ratio of CeO2 to significantly enhance the oxygen vacancies, and simultaneously CeO2 (111) facilitated the uniform dispersion of Cu and Pt. The strong metal-carrier interaction synergy endowed the PtCuOX/CeO2-X nanozymes with highly efficient SOD/CAT-like activity by the decreased formation energy of oxygen vacancy, promoted electron transfer, the increased adsorption energy of intermediates, and the decreased reaction activation energy. Besides, the nanozymes have excellent photothermal conversion efficiency (55.41%). Further, the PtCuOX/CeO2-X antioxidant system effectively scavenged intracellular ROS and RNS, protected mitochondrial function, and inhibited the inflammatory factors, thus reducing chondrocyte apoptosis. In vivo, experiments demonstrated the biosafety of PtCuOX/CeO2-X and its potent effect on OA suppression. In particular, NIR radiation further enhanced the effects. Mechanistically, PtCuOX/CeO2-X nanozymes reduced ras-related C3 botulinum toxin substrate 1 (Rac-1) and p-p65 protein expression, as well as ROS levels to remodel the inflammatory microenvironment by inhibiting the ROS/Rac-1/nuclear factor kappa-B (NF-κB) signaling pathway. This study introduces new clinical concepts and perspectives that can be applied to inflammatory diseases.

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来源期刊
Journal of Nanobiotechnology
Journal of Nanobiotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
13.90
自引率
4.90%
发文量
493
审稿时长
16 weeks
期刊介绍: Journal of Nanobiotechnology is an open access peer-reviewed journal communicating scientific and technological advances in the fields of medicine and biology, with an emphasis in their interface with nanoscale sciences. The journal provides biomedical scientists and the international biotechnology business community with the latest developments in the growing field of Nanobiotechnology.
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