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Constructing biocompatible MSN@Ce@PEG nanoplatform for enhancing regenerative capability of stem cell via ROS-scavenging in periodontitis

牙周膜干细胞 生物相容性 氧化应激 化学 活性氧 干细胞 牙周炎 细胞内 再生(生物学) 间充质干细胞 细胞生物学 PEG比率 生物化学 牙科 生物 医学 碱性磷酸酶 经济 有机化学 财务
作者
Shuangshuang Ren,Yi Zhou,Ruyi Fan,Wenzao Peng,Xuanwen Xu,Lu Li,Yan Xu
出处
期刊:Chemical Engineering Journal [Elsevier]
卷期号:423: 130207-130207 被引量:35
标识
DOI:10.1016/j.cej.2021.130207
摘要

The excessive local reactive oxygen species (ROS) level of periodontitis results in the quantity and function decline of periodontal ligament stem cells (PDLSCs), which aggravates the destruction and impedes the restoration of periodontal tissue. Therefore, regulating and restoring local ROS levels may promote stem cell survival and function recovery, improving periodontal tissue regeneration. Thus, protecting PDLSCs from oxidative stress injury and promoting regenerative capacity are both important. In this study, we synthesized a simple multi-functional nanocomposite by loading ceria oxide (CeO2) onto the surface of mesoporous silica ([email protected]), and then modified them with PEG ([email protected]@PEG) for better dispersion and biocompatibility, achieving simultaneous intracellular ROS-regulation and osteogenic differentiation promotion for PDLSCs against oxidative stress in periodontitis. We investigated the in-vitro regulatory effects of [email protected]@PEG NPs in hPDLSCs with H2O2-induced oxidative stress injury and the in-vivo therapy effects in a rat model of oxidative stress-induced periodontal disease, as well as the potential biotoxicity. Results have demonstrated that [email protected]@PEG NPs have good biocompatibility, and also showed [email protected]@PEG NPs not only efficiently regulated intracellular ROS, which protected cells from aging and improved the differentiative capacity of hPDLSCs, but also prevented inflammatory destruction of periodontal tissue. [email protected]@PEG NPs have great potential in ROS-regulation for safe and efficient periodontal therapy and are expected to be applied in other biomedical fields associated with redox metabolism imbalance.
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