CeO2 Nanoparticles Reduce Oxidative Stress and Delay the Degeneration of Intervertebral Disc.

IF 4.1 3区 化学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Bioinorganic Chemistry and Applications Pub Date : 2025-07-13 eCollection Date: 2025-01-01 DOI:10.1155/bca/3399767
Sheng-Jie Chang, Xin-Wei Zhang, Hao-Wei Xu, Shu-Bao Zhang, Xiao-Wei Liu, Yu-Yang Yi, Wei Pan, Kai Li, Shan-Jin Wang
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引用次数: 0

Abstract

The oxidative stress of the body can destroy the homeostasis and lead to a series of adverse outcomes. In recent years, nano-enzyme materials, as a new hotspot in materials science, have been gradually applied in various fields because of their enzyme-like activities at the nanoscale and their ability to regulate various physiological processes in organisms. In this study, we developed a novel cerium oxide (CeO2) nano-enzyme drug and demonstrated that the nano-enzyme can effectively improve oxidative stress levels and delay disc degeneration in rats. The experimental results confirmed that in in vitro experiments, the novel cerium oxide nano-enzyme could significantly reduce the ROS level in cells, delay cell senescence, reduce the level of apoptosis, and improve the metabolic state of nucleus pulposus cells. At the same time, it maintains low toxicity to cells. At the animal level, imaging and histomorphological evaluation showed that the novel cerium oxide nano-enzyme could significantly improve the disc height index, MRI Pfirrmann grade, and histological grade scores in rats. In summary, we have developed a successful cerium oxide nano-enzyme, which can be used to reduce the degeneration level of intervertebral disc and provide a new potential idea for clinical treatment of patients with lumbar disc herniation.

CeO2纳米颗粒减轻氧化应激,延缓椎间盘退变。
机体的氧化应激可破坏体内平衡,导致一系列不良后果。近年来,纳米酶材料作为材料科学的一个新热点,因其具有纳米尺度的类酶活性和调节生物体各种生理过程的能力而逐渐被应用于各个领域。在本研究中,我们开发了一种新型的氧化铈(CeO2)纳米酶药物,并证明纳米酶可以有效地改善大鼠的氧化应激水平,延缓椎间盘退变。实验结果证实,在体外实验中,新型氧化铈纳米酶能显著降低细胞内ROS水平,延缓细胞衰老,降低细胞凋亡水平,改善髓核细胞代谢状态。同时,对细胞保持低毒性。在动物水平上,影像学和组织形态学评价表明,新型氧化铈纳米酶能显著提高大鼠椎间盘高度指数、MRI Pfirrmann分级和组织学分级评分。综上所述,我们成功研制出一种氧化铈纳米酶,可用于降低椎间盘退变程度,为临床治疗腰椎间盘突出症患者提供了一种新的潜在思路。
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来源期刊
Bioinorganic Chemistry and Applications
Bioinorganic Chemistry and Applications 化学-生化与分子生物学
CiteScore
7.00
自引率
5.30%
发文量
105
审稿时长
>12 weeks
期刊介绍: Bioinorganic Chemistry and Applications is primarily devoted to original research papers, but also publishes review articles, editorials, and letter to the editor in the general field of bioinorganic chemistry and its applications. Its scope includes all aspects of bioinorganic chemistry, including bioorganometallic chemistry and applied bioinorganic chemistry. The journal welcomes papers relating to metalloenzymes and model compounds, metal-based drugs, biomaterials, biocatalysis and bioelectronics, metals in biology and medicine, metals toxicology and metals in the environment, metal interactions with biomolecules and spectroscopic applications.
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