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铁与小干扰RNA共封装的铁蛋白纳米笼协同诱导铁死亡用于癌症治疗。

Iron and siRNA co-encapsulated ferritin nanocages induce ferroptosis synergistically for cancer therapy.

作者信息

Liu Danni, Wang Yaoqi, Sun Qi, Mei Dong, Wang Xiaoling, Su Yan, Zhang Jie, Huo Ran, Tian Yang, Liu Siyu, Zhang Shuang, Cui Chunying

机构信息

School of Pharmaceutical Sciences, Capital Medical University, Beijing 100069, China.

Beijing Area Major Laboratory of Peptide and Small Molecular Drugs, Engineering Research Center of Endogenous Prophylactic of Ministry of Education of China, Beijing Laboratory of Biomedical Materials, Beijing 100069, China.

出版信息

Acta Pharm Sin B. 2025 Jan;15(1):526-541. doi: 10.1016/j.apsb.2024.10.006. Epub 2024 Oct 22.

Abstract

Ferroptosis has received great attention as an iron-dependent programmed cell death for efficient cancer therapy. However, with the accumulation of iron in tumor cells, the antioxidant system is activated by reducing glutathione (GSH) with glutathione peroxidase 4 (GPX4), which critically limits the ferroptosis therapeutic effect. Herein, an iron and GPX4 silencing siRNA (siGPX4) co-encapsulated ferritin nanocage (HFn@Fe/siGPX4) was developed to enhance ferroptosis by disruption of redox homeostasis and inhibition of antioxidant enzyme synergistically. The siGPX4 were loaded into the nanocages by pre-incubated with iron, which could significantly improve the loading efficiency of the gene drugs when compared with the reported gene drug loading strategy by ferritin nanocages. And more iron was overloaded into the ferritin through the diffusion method. When HFn@Fe/siGPX4 was taken up by human breast cancer cell MCF-7 in a TfR1-mediated pathway, the excess iron ions in the drug delivery system could for one thing induce ferroptosis by the production of reactive oxygen species (ROS), for another promote siGPX4 escaping from the lysosome to exert gene silencing effect more effectively. Both the and results demonstrated that HFn@Fe/siGPX4 could significantly inhibit tumor growth by synergistical ferroptosis. Thus, the developed HFn@Fe/siGPX4 afforded a combined ferroptosis strategy for ferroptosis-based antitumor as well as a novel and efficient gene drug delivery system.

摘要

铁死亡作为一种依赖铁的程序性细胞死亡方式,因其在癌症有效治疗方面的潜力而备受关注。然而,随着肿瘤细胞中铁的积累,抗氧化系统会通过谷胱甘肽过氧化物酶4(GPX4)还原谷胱甘肽(GSH)而被激活,这严重限制了铁死亡的治疗效果。在此,我们开发了一种共封装铁和GPX4沉默小干扰RNA(siGPX4)的铁蛋白纳米笼(HFn@Fe/siGPX4),通过协同破坏氧化还原稳态和抑制抗氧化酶来增强铁死亡。通过与铁预孵育将siGPX4加载到纳米笼中,与报道的铁蛋白纳米笼基因药物加载策略相比,这可以显著提高基因药物的加载效率。并且通过扩散法将更多的铁过载到铁蛋白中。当HFn@Fe/siGPX4通过转铁蛋白受体1(TfR1)介导的途径被人乳腺癌细胞MCF-7摄取时,药物递送系统中的过量铁离子一方面可以通过产生活性氧(ROS)诱导铁死亡,另一方面促进siGPX4从溶酶体中逃逸,从而更有效地发挥基因沉默作用。体内和体外结果均表明,HFn@Fe/siGPX4可以通过协同铁死亡显著抑制肿瘤生长。因此,所开发的HFn@Fe/siGPX4为基于铁死亡的抗肿瘤提供了一种联合铁死亡策略,以及一种新型高效的基因药物递送系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f586/11873607/d0ceedb56794/ga1.jpg

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