A novel approach for the prevention of ionizing radiation-induced bone loss using a designer multifunctional cerium oxide nanozyme

破骨细胞 氧化铈 活性氧 电离辐射 化学 DNA损伤 生物物理学 纳米材料 材料科学 氧化物 体外 纳米技术 辐照 生物化学 DNA 生物 有机化学 物理 核物理学
作者
Fei Wei,Craig J. Neal,Tamil S. Sakthivel,Yifei Fu,Mahmoud Omer,Amitava Adhikary,Samuel Ward,Khoa Minh Ta,Samuel Moxon,Marco Molinari,Jackson Asiatico,Michael Kinzel,Sergey Yarmolenko,Vee San Cheong,Nina Orlovskaya,Ranajay Ghosh,Sudipta Seal,Melanie Coathup
出处
期刊:Bioactive Materials [Elsevier]
卷期号:21: 547-565 被引量:63
标识
DOI:10.1016/j.bioactmat.2022.09.011
摘要

The disability, mortality and costs due to ionizing radiation (IR)-induced osteoporotic bone fractures are substantial and no effective therapy exists. Ionizing radiation increases cellular oxidative damage, causing an imbalance in bone turnover that is primarily driven via heightened activity of the bone-resorbing osteoclast. We demonstrate that rats exposed to sublethal levels of IR develop fragile, osteoporotic bone. At reactive surface sites, cerium ions have the ability to easily undergo redox cycling: drastically adjusting their electronic configurations and versatile catalytic activities. These properties make cerium oxide nanomaterials fascinating. We show that an engineered artificial nanozyme composed of cerium oxide, and designed to possess a higher fraction of trivalent (Ce3+) surface sites, mitigates the IR-induced loss in bone area, bone architecture, and strength. These investigations also demonstrate that our nanozyme furnishes several mechanistic avenues of protection and selectively targets highly damaging reactive oxygen species, protecting the rats against IR-induced DNA damage, cellular senescence, and elevated osteoclastic activity in vitro and in vivo. Further, we reveal that our nanozyme is a previously unreported key regulator of osteoclast formation derived from macrophages while also directly targeting bone progenitor cells, favoring new bone formation despite its exposure to harmful levels of IR in vitro. These findings open a new approach for the specific prevention of IR-induced bone loss using synthesis-mediated designer multifunctional nanomaterials.
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