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In situ oxidative polymerization of platinum(iv) prodrugs in pore-confined spaces of CaCO(3) nanoparticles for cancer chemoimmunotherapy

Drug resistance and metastases are the leading causes of death in clinics. To overcome this limitation, there is an urgent need for new therapeutic agents and drug formulations that are able to therapeutically intervene by non-traditional mechanisms. Herein, the physical adsorption and oxidative pol...

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Autores principales: Wei, Fangmian, Ke, Libing, Gao, Siyuan, Karges, Johannes, Wang, Jinquan, Chen, Yu, Ji, Liangnian, Chao, Hui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10306087/
https://www.ncbi.nlm.nih.gov/pubmed/37389267
http://dx.doi.org/10.1039/d3sc02264a
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author Wei, Fangmian
Ke, Libing
Gao, Siyuan
Karges, Johannes
Wang, Jinquan
Chen, Yu
Ji, Liangnian
Chao, Hui
author_facet Wei, Fangmian
Ke, Libing
Gao, Siyuan
Karges, Johannes
Wang, Jinquan
Chen, Yu
Ji, Liangnian
Chao, Hui
author_sort Wei, Fangmian
collection PubMed
description Drug resistance and metastases are the leading causes of death in clinics. To overcome this limitation, there is an urgent need for new therapeutic agents and drug formulations that are able to therapeutically intervene by non-traditional mechanisms. Herein, the physical adsorption and oxidative polymerization of Pt(iv) prodrugs in pore-confined spaces of CaCO(3) nanoparticles is presented, and the nanomaterial surface was coated with DSPE-PEG(2000)-Biotin to improve aqueous solubility and tumor targeting. While the nanoparticle scaffold remained stable in an aqueous solution, it quickly degraded into Ca(2+) in the presence of acid and into cisplatin in the presence of GSH. The nanoparticles were found to interact in cisplatin-resistant non-small lung cancer cells by a multimodal mechanism of action involving mitochondrial Ca(2+) overload, dual depletion of GSH, nuclear DNA platination, and amplification of ROS and lipid peroxide generation, resulting in triggering cell death by a combination of apoptosis, ferroptosis and immunogenic cell death in vitro and in vivo. This study could present a novel strategy for the treatment of drug-resistant and metastatic tumors and therefore overcome the limitations of currently used therapeutic agents in the clinics.
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spelling pubmed-103060872023-06-29 In situ oxidative polymerization of platinum(iv) prodrugs in pore-confined spaces of CaCO(3) nanoparticles for cancer chemoimmunotherapy Wei, Fangmian Ke, Libing Gao, Siyuan Karges, Johannes Wang, Jinquan Chen, Yu Ji, Liangnian Chao, Hui Chem Sci Chemistry Drug resistance and metastases are the leading causes of death in clinics. To overcome this limitation, there is an urgent need for new therapeutic agents and drug formulations that are able to therapeutically intervene by non-traditional mechanisms. Herein, the physical adsorption and oxidative polymerization of Pt(iv) prodrugs in pore-confined spaces of CaCO(3) nanoparticles is presented, and the nanomaterial surface was coated with DSPE-PEG(2000)-Biotin to improve aqueous solubility and tumor targeting. While the nanoparticle scaffold remained stable in an aqueous solution, it quickly degraded into Ca(2+) in the presence of acid and into cisplatin in the presence of GSH. The nanoparticles were found to interact in cisplatin-resistant non-small lung cancer cells by a multimodal mechanism of action involving mitochondrial Ca(2+) overload, dual depletion of GSH, nuclear DNA platination, and amplification of ROS and lipid peroxide generation, resulting in triggering cell death by a combination of apoptosis, ferroptosis and immunogenic cell death in vitro and in vivo. This study could present a novel strategy for the treatment of drug-resistant and metastatic tumors and therefore overcome the limitations of currently used therapeutic agents in the clinics. The Royal Society of Chemistry 2023-06-02 /pmc/articles/PMC10306087/ /pubmed/37389267 http://dx.doi.org/10.1039/d3sc02264a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wei, Fangmian
Ke, Libing
Gao, Siyuan
Karges, Johannes
Wang, Jinquan
Chen, Yu
Ji, Liangnian
Chao, Hui
In situ oxidative polymerization of platinum(iv) prodrugs in pore-confined spaces of CaCO(3) nanoparticles for cancer chemoimmunotherapy
title In situ oxidative polymerization of platinum(iv) prodrugs in pore-confined spaces of CaCO(3) nanoparticles for cancer chemoimmunotherapy
title_full In situ oxidative polymerization of platinum(iv) prodrugs in pore-confined spaces of CaCO(3) nanoparticles for cancer chemoimmunotherapy
title_fullStr In situ oxidative polymerization of platinum(iv) prodrugs in pore-confined spaces of CaCO(3) nanoparticles for cancer chemoimmunotherapy
title_full_unstemmed In situ oxidative polymerization of platinum(iv) prodrugs in pore-confined spaces of CaCO(3) nanoparticles for cancer chemoimmunotherapy
title_short In situ oxidative polymerization of platinum(iv) prodrugs in pore-confined spaces of CaCO(3) nanoparticles for cancer chemoimmunotherapy
title_sort in situ oxidative polymerization of platinum(iv) prodrugs in pore-confined spaces of caco(3) nanoparticles for cancer chemoimmunotherapy
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10306087/
https://www.ncbi.nlm.nih.gov/pubmed/37389267
http://dx.doi.org/10.1039/d3sc02264a
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