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Lipid Nanoparticular Codelivery System for Enhanced Antitumor Effects by Ferroptosis–Apoptosis Synergistic with Programmed Cell Death-Ligand 1 Downregulation

下调和上调 细胞凋亡 程序性细胞死亡 谷胱甘肽 细胞内 细胞生物学 癌细胞 细胞毒性 活性氧 化学 脂质过氧化 癌症研究 药理学 抗氧化剂 生物化学 生物 体外 癌症 基因 遗传学
作者
Weiran Cao,Xue Zhang,Yaxuan Feng,Rui Li,Lu An,Zijie Li,Fei Yu,Lu Sun,Jiancheng Wang,Zhiyu Wang,Huining He
出处
期刊:ACS Nano [American Chemical Society]
卷期号:18 (26): 17267-17281 被引量:34
标识
DOI:10.1021/acsnano.4c04901
摘要

Intrinsic or acquired resistance to chemical drugs severely limits their therapeutic efficacy in cancer treatment. Various intracellular antioxidant molecules, particularly glutathione (GSH), play a crucial role in maintaining intracellular redox homeostasis by mitigating the overproduced reactive oxygen species (ROS) due to rapid cell proliferation. Notably, these antioxidants also eliminate chemical-drug-induced ROS, eventually diminishing their cytotoxicity and rendering them less effective. In this study, we combined erastin, a GSH biosynthesis inhibitor, with 2'-deoxy-5-fluorouridine 5'-monophosphate sodium salt (FdUMP), an ROS-based drug, to effectively disrupt intracellular redox homeostasis and reverse chemotherapy resistance. Therefore, efficient ferroptosis and apoptosis were simultaneously induced for enhanced antitumor effects. Additionally, we employed small interfering RNA targeting PD-L1 (siPD-L1) as a third agent to block immune-checkpoint recognition by CD8+ T cells. The highly immunogenic cell peroxidates or damage-associated molecular patterns (DAMPs) induced by erastin acted synergistically with downregulated PD-L1 to enhance the antitumor effects. To codeliver these three drugs simultaneously and efficiently, we designed GE11 peptide-modified lipid nanoparticles (LNPs) containing calcium phosphate cores to achieve high encapsulation efficiencies. In vitro studies verified its enhanced cytotoxicity, efficient intracellular ROS induction and GSH/GPX4 downregulation, substantial lipid peroxidation product accumulation, and mitochondrial depolarization. In vivo, this formulation effectively accumulated at tumor sites and achieved significant tumor inhibition in subcutaneous colon cancer (CRC) mouse models with a maximum tumor inhibition rate of 83.89% at a relatively low dose. Overall, a strategy to overcome clinical drug resistance was verified in this study by depleting GSH and activating adaptive immunity.
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