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具有可持续活性氧暴的生物工程纳米发电机用于自我增强声化学动力学肿瘤治疗。

Bioengineered nanogenerator with sustainable reactive oxygen species storm for self-reinforcing sono-chemodynamic oncotherapy.

机构信息

Institute of Materia Medica & College of Life Science and Technology, Xinjiang University, Urumqi, 830017, China; College of Materials, Xiamen University, Xiamen 361005, China.

College of Materials, Xiamen University, Xiamen 361005, China.

出版信息

J Colloid Interface Sci. 2023 Sep 15;646:649-662. doi: 10.1016/j.jcis.2023.05.081. Epub 2023 May 18.

Abstract

Oxidative stress-based antitumor modalities derived from reactive oxygen species (ROS) storms have attracted increasing attention. Nevertheless, low delivery efficiency, poor selectivity, hypoxia and overexpressed glutathione (GSH) have severely restricted the sustainable generation of the ROS storm in tumor cells. Herein, we design a bioengineered nanogenerator by coordination-driven co-assembly of sonosensitizer indocyanine green (ICG), Fenton-like agent copper ion (Cu) and mitochondrial respiratory inhibitor metformin (MET), which is then camouflaged by a cancer cytomembrane to induce a sustainable intracellular ROS storm for on-demand self-reinforcing sono-chemodynamic oncotherapy. Such a nanogenerator with a core-shell structure, suitable diameter and outstanding stability can efficiently accumulate in tumor regions and then internalize into tumor cells through the camouflaging and homologous targeting strategy of the cancer cytomembrane. The nanogenerator shows an exceptional instability under the triple stimulations of acidic lysosomes, overexpressed GSH and ultrasound (US) radiation, thereby resulting in the rapid disassembly and burst drug release. Interestingly, the released MET significantly enhances the sonodynamic therapy (SDT) efficacy of the released ICG by inhibiting mitochondrial respiration and meanwhile the released Cu obviously reduces ROS elimination by downregulating overexpressed GSH for self-amplifying and self-protecting the intracellular ROS storm. Moreover, such a nanogenerator almost completely achieves the tumor ablation in vivo in a single therapy cycle. Taken together, our bioengineered nanogenerator with a sustainable ROS storm can provide a promising strategy for ROS storm-based oncotherapy.

摘要

基于活性氧(ROS)暴的氧化应激抗肿瘤方式引起了越来越多的关注。然而,低传递效率、差的选择性、缺氧和过表达的谷胱甘肽(GSH)严重限制了肿瘤细胞中 ROS 暴的持续产生。在此,我们通过声敏剂吲哚菁绿(ICG)、类 Fenton 试剂铜离子(Cu)和线粒体呼吸抑制剂二甲双胍(MET)的配位共组装设计了一种生物工程纳米发电机,然后用癌细胞质膜进行伪装,以诱导持续的细胞内 ROS 暴,实现按需自增强声化学动力学肿瘤治疗。这种具有核壳结构、合适直径和优异稳定性的纳米发电机可以高效地在肿瘤区域积累,然后通过癌细胞质膜的伪装和同源靶向策略内化到肿瘤细胞中。纳米发电机在酸性溶酶体、过表达的 GSH 和超声(US)辐射的三重刺激下表现出异常的不稳定性,从而导致快速的组装解体和药物爆发释放。有趣的是,释放的 MET 通过抑制线粒体呼吸显著增强了释放的 ICG 的声动力学治疗(SDT)效果,同时释放的 Cu 通过下调过表达的 GSH 明显减少 ROS 消除,从而自我放大和自我保护细胞内的 ROS 暴。此外,这种纳米发电机在单次治疗周期中几乎完全实现了体内肿瘤消融。总之,我们设计的具有持续 ROS 暴的生物工程纳米发电机为基于 ROS 暴的肿瘤治疗提供了一种很有前景的策略。

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