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Biomimetic nano-chelate diethyldithiocarbamate Cu/Fe for enhanced metalloimmunity and ferroptosis activation in glioma therapy.

Authors :
Wang, Rui
Song, Wenqin
Zhu, Jie
Shao, Xinyue
Yang, Chenxiao
Xiong, Wei
Wang, Bing
Zhao, Pengfei
Chen, Meiwan
Huang, Yongzhuo
Source :
Journal of Controlled Release. Apr2024, Vol. 368, p84-96. 13p.
Publication Year :
2024

Abstract

Ferroptosis has emerged as a promising therapeutic approach for glioma. However, its efficacy is often compromised by the activated GPX4-reduced glutathione (GSH) system and the poor brain delivery efficiency of ferroptosis inducers. Therefore, suppression of the GPX4-GSH axis to induce the accumulation of lipid peroxides becomes an essential strategy to augment ferroptosis. In this study, we present a metalloimmunological strategy to target the GPX4-GSH axis by inhibiting the cystine/glutamate antiporter system (system Xc−) and glutathione synthesis. To achieve this, we developed a complex of diethyldithiocarbamate (DDC) chelated with copper and ferrous ions (DDC/Cu-Fe) to trigger T-cell immune responses in the tumor microenvironment, as well as to inhibit tumor-associated macrophages, thereby alleviating immunosuppression. To enhance brain delivery, the DDC/Cu-Fe complex was encapsulated into a hybrid albumin and lactoferrin nanoparticle (Alb/LF NP), targeting the nutrient transporters (e.g., LRP-1 and SPARC) overexpressed in the blood-brain barrier (BBB) and glioma cells. The Alb/LF NP effectively promoted the brain accumulation of DDC/Cu-Fe, synergistically induced ferroptosis in glioma cells and activated anticancer immunity, thereby prolonging the survival of glioma-bearing mice. The nanoformulation of DDC/Cu-Fe provides a promising strategy that combines ferroptosis and metalloimmunology for glioma treatment. Albumin and lactoferrin hybrid nanoparticles (Alb/LF NP) loaded with DDC/Cu-Fe are developed for glioma therapy by activating anti-tumor immunity and inducing ferroptosis. The Alb/LF NP can efficiently target the glioma, remodel the immune microenvironment, and suppress the GSH/GPX4 system to augment ferroptosis. [Display omitted] [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01683659
Volume :
368
Database :
Academic Search Index
Journal :
Journal of Controlled Release
Publication Type :
Academic Journal
Accession number :
176466330
Full Text :
https://doi.org/10.1016/j.jconrel.2024.02.004