Cargando…

Reversing ferroptosis resistance by MOFs through regulation intracellular redox homeostasis

As a non-apoptotic cell death form, ferroptosis offers an alternative approach to overcome cancer chemotherapy resistance. However, accumulating evidence indicates cancer cells can develop ferroptosis resistance by evolving antioxidative defense mechanisms. To address this issue, we prepared a Buthi...

Descripción completa

Detalles Bibliográficos
Autores principales: Wang, Chengcheng, Wang, Jiao, Pan, Xue, Yu, Shuang, Chen, Meiqi, Gao, Yan, Song, Zilin, Hu, Haiyang, Zhao, Xiuli, Chen, Dawei, Han, Fei, Qiao, Mingxi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Shenyang Pharmaceutical University 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9841358/
https://www.ncbi.nlm.nih.gov/pubmed/36660553
http://dx.doi.org/10.1016/j.ajps.2022.11.004
_version_ 1784869822531633152
author Wang, Chengcheng
Wang, Jiao
Pan, Xue
Yu, Shuang
Chen, Meiqi
Gao, Yan
Song, Zilin
Hu, Haiyang
Zhao, Xiuli
Chen, Dawei
Han, Fei
Qiao, Mingxi
author_facet Wang, Chengcheng
Wang, Jiao
Pan, Xue
Yu, Shuang
Chen, Meiqi
Gao, Yan
Song, Zilin
Hu, Haiyang
Zhao, Xiuli
Chen, Dawei
Han, Fei
Qiao, Mingxi
author_sort Wang, Chengcheng
collection PubMed
description As a non-apoptotic cell death form, ferroptosis offers an alternative approach to overcome cancer chemotherapy resistance. However, accumulating evidence indicates cancer cells can develop ferroptosis resistance by evolving antioxidative defense mechanisms. To address this issue, we prepared a Buthionine-(S,R)-sulfoximine (BSO) loaded metal organic framework (MOF) of BSO-MOF-HA (BMH) with the combination effect of boosting oxidative damage and inhibiting antioxidative defense. MOF nanoparticle was constructed by the photosensitizer of [4,4,4,4-(porphine-5,10,15,20-tetrayl) tetrakis (benzoic acid)] (TCPP) and the metal ion of Zr6, which was further decorated with hyaluronic acid (HA) in order to impart active targeting to CD44 receptors overexpressed cancer cells. BMH exhibited a negative charge and spherical shape with average particle size about 162.5 nm. BMH was found to restore the susceptibility of 4T1 cells to ferroptosis under irradiation. This was attributed to the combination of photodynamic therapy (PDT) and γ-glutamylcysteine synthetase inhibitor of BSO, shifting the redox balance to oxidative stress. Enhanced ferroptosis also induced the release of damage associated molecular patterns (DAMPs) to maturate dendritic cells and activated T lymphocytes, leading to superior anti-tumor performance in vivo. Taken together, our findings demonstrated that boosting oxidative damage with photosensitizer serves as an effective strategy to reverse ferroptosis resistance.
format Online
Article
Text
id pubmed-9841358
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Shenyang Pharmaceutical University
record_format MEDLINE/PubMed
spelling pubmed-98413582023-01-18 Reversing ferroptosis resistance by MOFs through regulation intracellular redox homeostasis Wang, Chengcheng Wang, Jiao Pan, Xue Yu, Shuang Chen, Meiqi Gao, Yan Song, Zilin Hu, Haiyang Zhao, Xiuli Chen, Dawei Han, Fei Qiao, Mingxi Asian J Pharm Sci Original Research Paper As a non-apoptotic cell death form, ferroptosis offers an alternative approach to overcome cancer chemotherapy resistance. However, accumulating evidence indicates cancer cells can develop ferroptosis resistance by evolving antioxidative defense mechanisms. To address this issue, we prepared a Buthionine-(S,R)-sulfoximine (BSO) loaded metal organic framework (MOF) of BSO-MOF-HA (BMH) with the combination effect of boosting oxidative damage and inhibiting antioxidative defense. MOF nanoparticle was constructed by the photosensitizer of [4,4,4,4-(porphine-5,10,15,20-tetrayl) tetrakis (benzoic acid)] (TCPP) and the metal ion of Zr6, which was further decorated with hyaluronic acid (HA) in order to impart active targeting to CD44 receptors overexpressed cancer cells. BMH exhibited a negative charge and spherical shape with average particle size about 162.5 nm. BMH was found to restore the susceptibility of 4T1 cells to ferroptosis under irradiation. This was attributed to the combination of photodynamic therapy (PDT) and γ-glutamylcysteine synthetase inhibitor of BSO, shifting the redox balance to oxidative stress. Enhanced ferroptosis also induced the release of damage associated molecular patterns (DAMPs) to maturate dendritic cells and activated T lymphocytes, leading to superior anti-tumor performance in vivo. Taken together, our findings demonstrated that boosting oxidative damage with photosensitizer serves as an effective strategy to reverse ferroptosis resistance. Shenyang Pharmaceutical University 2023-01 2022-12-17 /pmc/articles/PMC9841358/ /pubmed/36660553 http://dx.doi.org/10.1016/j.ajps.2022.11.004 Text en © 2022 Shenyang Pharmaceutical University. Published by Elsevier B.V. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Research Paper
Wang, Chengcheng
Wang, Jiao
Pan, Xue
Yu, Shuang
Chen, Meiqi
Gao, Yan
Song, Zilin
Hu, Haiyang
Zhao, Xiuli
Chen, Dawei
Han, Fei
Qiao, Mingxi
Reversing ferroptosis resistance by MOFs through regulation intracellular redox homeostasis
title Reversing ferroptosis resistance by MOFs through regulation intracellular redox homeostasis
title_full Reversing ferroptosis resistance by MOFs through regulation intracellular redox homeostasis
title_fullStr Reversing ferroptosis resistance by MOFs through regulation intracellular redox homeostasis
title_full_unstemmed Reversing ferroptosis resistance by MOFs through regulation intracellular redox homeostasis
title_short Reversing ferroptosis resistance by MOFs through regulation intracellular redox homeostasis
title_sort reversing ferroptosis resistance by mofs through regulation intracellular redox homeostasis
topic Original Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9841358/
https://www.ncbi.nlm.nih.gov/pubmed/36660553
http://dx.doi.org/10.1016/j.ajps.2022.11.004
work_keys_str_mv AT wangchengcheng reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT wangjiao reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT panxue reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT yushuang reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT chenmeiqi reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT gaoyan reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT songzilin reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT huhaiyang reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT zhaoxiuli reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT chendawei reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT hanfei reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis
AT qiaomingxi reversingferroptosisresistancebymofsthroughregulationintracellularredoxhomeostasis