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用于增强磁靶向光热疗法和芬顿反应的基于FeO的多功能纳米球

FeO-Based Multifunctional Nanospheres for Amplified Magnetic Targeting Photothermal Therapy and Fenton Reaction.

作者信息

Wu Huanhuan, Cheng Keman, He Yuan, Li Ziyang, Su Huiling, Zhang Xiuming, Sun Yanan, Shi Wei, Ge Dongtao

机构信息

Department of Biomaterials, Key Laboratory of Biomedical Engineering of Fujian Province University, Research Center of Biomedical Engineering of Xiamen, College of Materials, Xiamen University, Xiamen 361005, Fujian, China.

出版信息

ACS Biomater Sci Eng. 2019 Feb 11;5(2):1045-1056. doi: 10.1021/acsbiomaterials.8b00468. Epub 2018 Dec 17.

Abstract

Multifunctional nanoplatforms have attracted the interests of many scientists because they can achieve better therapeutic effect in the combined treatment of cancer. A novel cancer therapeutic strategy which combines an FeO-based Fenton reaction with polypyrrole (PPy)-based photothermal therapy (PTT) was proposed. The multifunctional nanocomposite was comprised of FeO as the core, PPy as the shell, and polyethylene glycol. PPy could absorb near-infrared (NIR) light strongly and convert it into heat for tumor photothermal ablation, and FeO NPs were used as a target component to guide the nanoparticles to the tumor site under an external magnetic field. It was found that the PPy coating could be used not only for inducing PTT to ablate tumor cells but also for promoting Fe release from FeO nanoparticles. cell experiments confirmed that the increased Fe release could effectively enhance the FeO-based Fenton reaction, which catalyzed the conversion of HO into a highly toxic hydroxyl radical (OH), thus inducing tumor cell apoptosis. Furthermore, our experiments also showed that the PPy coating could generate a photothermal effect to kill 4T1 tumor cells under NIR light exposure but did no harm to normal cells in the dark. Under the guidance of the magnet, we found FeO@PPy-PEG (FeO@P-P) nanoparticles could effectively enrich in the tumor site, and the therapeutic effect from PTT and the photothermal strengthened Fenton reaction was also verified . It is confirmed for the first time that the photothermal effect could promote the release of iron ions from FeO under acid conditions and enhance the Fenton reaction. Therefore, the FeO@P-P nanoparticles, combined with the Fenton reaction and photothermal effect, and obviously the magnetic targeting and magnetic resonance imaging ability, are able to be a candidate for novel tumor theranostic agents.

摘要

多功能纳米平台吸引了众多科学家的关注,因为它们在癌症联合治疗中能取得更好的治疗效果。本文提出了一种将基于FeO的芬顿反应与基于聚吡咯(PPy)的光热疗法(PTT)相结合的新型癌症治疗策略。该多功能纳米复合材料以FeO为核,PPy为壳,并含有聚乙二醇。PPy能强烈吸收近红外(NIR)光并将其转化为热量用于肿瘤光热消融,而FeO纳米颗粒用作靶向成分,在外部磁场作用下引导纳米颗粒到达肿瘤部位。研究发现,PPy涂层不仅可用于诱导PTT消融肿瘤细胞,还能促进Fe从FeO纳米颗粒中释放。细胞实验证实,增加的Fe释放可有效增强基于FeO的芬顿反应,该反应催化将H₂O₂转化为高毒性的羟基自由基(·OH),从而诱导肿瘤细胞凋亡。此外,我们的实验还表明,PPy涂层在近红外光照射下可产生光热效应杀死4T1肿瘤细胞,但在黑暗中对正常细胞无害。在磁场引导下,我们发现FeO@PPy-PEG(FeO@P-P)纳米颗粒能有效富集于肿瘤部位,同时也验证了PTT和光热增强芬顿反应的治疗效果。首次证实光热效应可在酸性条件下促进Fe从FeO中释放并增强芬顿反应。因此,FeO@P-P纳米颗粒结合芬顿反应和光热效应,以及明显的磁靶向和磁共振成像能力,有望成为新型肿瘤诊疗试剂的候选者。

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