Penghui Wei, Xuegang Niu, Dengliang Wang, Chengzhong Du, Mingtao Zhu, Hongjia Zheng, Yongrui Hu, Yu Tian, Wei Huang, Chengyu Ding, Yuanxiang Lin, Yang Zhu, Dezhi Kang
{"title":"一种谷胱甘肽反应性的铁诱导剂,具有升高的不稳定铁池和自供的过氧化物,用于化学动力学治疗。","authors":"Penghui Wei, Xuegang Niu, Dengliang Wang, Chengzhong Du, Mingtao Zhu, Hongjia Zheng, Yongrui Hu, Yu Tian, Wei Huang, Chengyu Ding, Yuanxiang Lin, Yang Zhu, Dezhi Kang","doi":"10.1016/j.mtbio.2025.101913","DOIUrl":null,"url":null,"abstract":"<p><p>Chemodynamic therapy (CDT) is a novel approach in the treatment of tumors in which ferrous iron (Fe<sup>2+</sup>) is the primary catalyst of the Fenton reaction. However, Fe<sup>2+</sup> is typically stored in an oxidized mineral form as ferric iron (Fe<sup>3+</sup>) in ferritin, significantly limiting the efficacy of CDT. This work describes the preparation of redox-responsive nanoparticles (MO@DSSP NPs) embedded with OSMI-1 and methyl linoleate hydroperoxide (MLH) to synergistically enhance CDT efficacy, optimize peroxide supply and deplete glutathione (GSH). The redox-responsive MO@DSSP NPs undergo disintegration after being internalized by tumor cells due to the reductive tumor microenvironment, consuming GSH while releasing OSMI-1 and MLH. This process increases the intracellular labile iron pool (LIP) and oxidative stress at the tumor site by inhibiting O-GlcNAcylation of ferritin heavy chain (FTH). Furthermore, obstructing O-GlcNAc modification triggers mitochondrial fragmentation alongside autophagy, thus contributing an extra source of reactive iron. The increased LIP significantly promotes the generation of hydroxyl radical (·OH) that causes lipid peroxidation, consequent damage of the cell membrane and ferroptosis. Therefore, this study describes an attractive CDT nanoagent that effectively inhibits the O-GlcNAcylation of FTH to mobilize endogenous Fenton-type metals, as well as offers a basis to the exploration of LIP-activatable MLH with high CDT efficacy, demonstrating significant potential for clinical applications.</p>","PeriodicalId":18310,"journal":{"name":"Materials Today Bio","volume":"32 ","pages":"101913"},"PeriodicalIF":8.7000,"publicationDate":"2025-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC12167041/pdf/","citationCount":"0","resultStr":"{\"title\":\"A glutathione-responsive ferroptotic inducer with elevated labile iron pool and self-supplied peroxide for chemodynamic therapy.\",\"authors\":\"Penghui Wei, Xuegang Niu, Dengliang Wang, Chengzhong Du, Mingtao Zhu, Hongjia Zheng, Yongrui Hu, Yu Tian, Wei Huang, Chengyu Ding, Yuanxiang Lin, Yang Zhu, Dezhi Kang\",\"doi\":\"10.1016/j.mtbio.2025.101913\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Chemodynamic therapy (CDT) is a novel approach in the treatment of tumors in which ferrous iron (Fe<sup>2+</sup>) is the primary catalyst of the Fenton reaction. However, Fe<sup>2+</sup> is typically stored in an oxidized mineral form as ferric iron (Fe<sup>3+</sup>) in ferritin, significantly limiting the efficacy of CDT. This work describes the preparation of redox-responsive nanoparticles (MO@DSSP NPs) embedded with OSMI-1 and methyl linoleate hydroperoxide (MLH) to synergistically enhance CDT efficacy, optimize peroxide supply and deplete glutathione (GSH). The redox-responsive MO@DSSP NPs undergo disintegration after being internalized by tumor cells due to the reductive tumor microenvironment, consuming GSH while releasing OSMI-1 and MLH. This process increases the intracellular labile iron pool (LIP) and oxidative stress at the tumor site by inhibiting O-GlcNAcylation of ferritin heavy chain (FTH). Furthermore, obstructing O-GlcNAc modification triggers mitochondrial fragmentation alongside autophagy, thus contributing an extra source of reactive iron. The increased LIP significantly promotes the generation of hydroxyl radical (·OH) that causes lipid peroxidation, consequent damage of the cell membrane and ferroptosis. 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A glutathione-responsive ferroptotic inducer with elevated labile iron pool and self-supplied peroxide for chemodynamic therapy.
Chemodynamic therapy (CDT) is a novel approach in the treatment of tumors in which ferrous iron (Fe2+) is the primary catalyst of the Fenton reaction. However, Fe2+ is typically stored in an oxidized mineral form as ferric iron (Fe3+) in ferritin, significantly limiting the efficacy of CDT. This work describes the preparation of redox-responsive nanoparticles (MO@DSSP NPs) embedded with OSMI-1 and methyl linoleate hydroperoxide (MLH) to synergistically enhance CDT efficacy, optimize peroxide supply and deplete glutathione (GSH). The redox-responsive MO@DSSP NPs undergo disintegration after being internalized by tumor cells due to the reductive tumor microenvironment, consuming GSH while releasing OSMI-1 and MLH. This process increases the intracellular labile iron pool (LIP) and oxidative stress at the tumor site by inhibiting O-GlcNAcylation of ferritin heavy chain (FTH). Furthermore, obstructing O-GlcNAc modification triggers mitochondrial fragmentation alongside autophagy, thus contributing an extra source of reactive iron. The increased LIP significantly promotes the generation of hydroxyl radical (·OH) that causes lipid peroxidation, consequent damage of the cell membrane and ferroptosis. Therefore, this study describes an attractive CDT nanoagent that effectively inhibits the O-GlcNAcylation of FTH to mobilize endogenous Fenton-type metals, as well as offers a basis to the exploration of LIP-activatable MLH with high CDT efficacy, demonstrating significant potential for clinical applications.
期刊介绍:
Materials Today Bio is a multidisciplinary journal that specializes in the intersection between biology and materials science, chemistry, physics, engineering, and medicine. It covers various aspects such as the design and assembly of new structures, their interaction with biological systems, functionalization, bioimaging, therapies, and diagnostics in healthcare. The journal aims to showcase the most significant advancements and discoveries in this field. As part of the Materials Today family, Materials Today Bio provides rigorous peer review, quick decision-making, and high visibility for authors. It is indexed in Scopus, PubMed Central, Emerging Sources, Citation Index (ESCI), and Directory of Open Access Journals (DOAJ).