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Complementing Cancer Photodynamic Therapy with Ferroptosis through Iron Oxide Loaded Porphyrin-Grafted Lipid Nanoparticles

机译:通过氧化铁负载卟啉接枝脂质纳米颗粒与铁死亡补充癌症光动力疗法

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摘要

Nanomaterials that combine multimodality imaging and therapeutic functions within a single nanoplatform have drawn extensive attention for molecular medicines and biological applications. Herein, we report a theranostic nanoplatform based on a relatively smaller (<20 nm) iron oxide loaded porphyrin-grafted lipid nanoparticles (Fe3O4@PGL NPs). The amphiphilic PGL easily self-assembled on the hydrophobic exterior surface of ultrasmall Fe3O4 NPs, resulting in a final ultrasmall Fe3O4@PGL NPs with diameter of , similar to 10 nm. The excellent self-assembling nature of the as-synthesized PGL NPs facilitated a higher loading of porphyrins, showed a negligible dark toxicity, and demonstrated an excellent photodynamic effect against HT-29 cancer cells in vitro. The in vivo experimental results further confirmed that Fe3O4@PGL NPs were ideally qualified for both the fluorescence and magnetic resonance (MR) imaging guided nanoplatforms to track the biodistribution and therapeutic responses of NPs as well as to simultaneously trigger the generation of highly cytotoxic reactive oxygen species (ROS) necessary for excellent photodynamic therapy (PDT). After recording convincing therapeutic responses, we further evaluated the ability of Fe3O4@PGL NPs/Fe3O4 pLipid NPs for ferroptosis therapy (FT) via tumor microenvironment (TME) modulation for improved anticancer activity. We hypothesized that tumor-associated macrophages (TAMs) could significantly improve the efficacy of FT by accelerating the Fenton reaction in vitro. In our results, the Fe ions released in vitro directly contributed to the Fenton reaction, whereas the presence of RAW 264.7 macrophages further accelerated the ROS generation as observed by the fluorescence imaging. The significant increase in the ROS during the coincubation of NPs, endocytosed by HT-29 cells and RAW264.7 cells, further induced increased cellular toxicity of cancer cells.
机译:将多模态成像和治疗功能结合在一个纳米平台中的纳米材料在分子药物和生物应用中引起了广泛关注。在此,我们报告了一种基于相对较小的(<20 nm)氧化铁负载卟啉接枝脂质纳米颗粒(Fe3O4@PGL NPs)的治疗诊断纳米平台。两亲性PGL容易在超小Fe3O4 NPs的疏水外表面自组装,最终形成直径为10 nm的超小Fe3O4@PGL NPs。合成的PGL NPs优异的自组装特性促进了卟啉的更高负载,显示出可忽略不计的暗毒性,并在体外显示出对HT-29癌细胞的出色光动力效应。体内实验结果进一步证实,Fe3O4@PGL NPs非常适合荧光和磁共振(MR)成像引导的纳米平台,以跟踪NPs的生物分布和治疗反应,并同时触发高细胞毒性活性氧(ROS)的产生,这是出色的光动力疗法(PDT)所必需的。在记录了令人信服的治疗反应后,我们进一步评估了Fe3O4@PGL NPs/Fe3O4 pLipid NPs通过肿瘤微环境(TME)调节提高抗癌活性的能力。我们假设肿瘤相关巨噬细胞 (TAM) 可以通过在体外加速 Fenton 反应来显着提高 FT 的疗效。在我们的结果中,体外释放的Fe离子直接促进了Fenton反应,而RAW 264.7巨噬细胞的存在进一步加速了荧光成像观察到的ROS的产生。在 HT-29 细胞和 RAW264.7 细胞的内吞作用下,NPs 共孵育过程中 ROS 的显着增加进一步诱导癌细胞的细胞毒性增加。

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