Ren Cui, Shi Zhiyong, Zhang Xiaowen, Yu Xueer, Gao Yang, Qi Zhi, Chen Yu, Wang Yong
Department of Chemistry, School of Science, Tianjin University, Tianjin, 300072, China.
Department of Molecular Pharmacology, School of Medicine, Nankai University, Tianjin, 300071, China.
Bioact Mater. 2024 Dec 3;45:434-445. doi: 10.1016/j.bioactmat.2024.11.009. eCollection 2025 Mar.
Chemo-dynamic therapy (CDT) has a great potential in tumor extirpation. It entails producing hypertoxic reactive oxygen species (ROS) that damage the DNA of tumor cells and other biomacromolecules. However, the efficiency of CDT is severely hampered by the massive presence of glutathione (GSH) in tumor cells and the interference of ROS defense systems, such as Mutt homolog 1 (MTH1) protein sanitizes ROS-oxidized nucleotide pools. In this research, DNA-mediated self-assembly nanoparticles (HTCG@TA NPs) were engineered with high-performance amplified oxidative damage and gene therapy effect for synergistic anti-tumor treatment. Cu was converted into Cu by redox reactions to deplete GSH while HO was catalyzed to generate hydroxyl radicals (·OH). As a result, the ROS level was evidently improved. Moreover, controllable-released TH588 prevented MTH1-mediated DNA repairing, thus aggravated oxidative damage to tumor cells. Meanwhile, the released functional nucleic acid G3139 downregulated the expression of Bcl-2, and accelerated the apoptosis of tumor cells. In conclusion, the HTCG@TA demonstrated significant effect in oxidative damage amplification and tumor inhibition both and , which has provided a new outlook for the clinical application of chemo-dynamic tumor treatment and synergistic gene therapy with self-delivery nanoplatforms.
化学动力疗法(CDT)在肿瘤切除方面具有巨大潜力。它需要产生高毒性的活性氧(ROS),这些活性氧会破坏肿瘤细胞的DNA和其他生物大分子。然而,肿瘤细胞中大量存在的谷胱甘肽(GSH)以及ROS防御系统的干扰,如MutT同源物1(MTH1)蛋白对ROS氧化的核苷酸池进行清理,严重阻碍了CDT的效率。在本研究中,构建了具有高性能放大氧化损伤和基因治疗效果的DNA介导自组装纳米颗粒(HTCG@TA NPs)用于协同抗肿瘤治疗。通过氧化还原反应将Cu转化为Cu ,以消耗GSH,同时催化HO产生羟基自由基(·OH)。结果,ROS水平明显提高。此外,可控释放的TH588阻止了MTH1介导的DNA修复,从而加重了对肿瘤细胞的氧化损伤。同时,释放的功能性核酸G3139下调了Bcl-2的表达,并加速了肿瘤细胞的凋亡。总之,HTCG@TA在体内外的氧化损伤放大和肿瘤抑制方面均表现出显著效果,为化学动力肿瘤治疗和自递送纳米平台协同基因治疗的临床应用提供了新的前景。