Linking Iron Metabolism, Ferroptosis, and Cancer: New Targets and Prospects for Effective Anticancer Therapeutic Interventions
Simple Summary
Abstract
1. Introduction
2. Iron in Cancer: Roles and Hallmarks
2.1. Iron Metabolism Changes in Cancer Cells and the Tumour Microenvironment
2.2. Iron Metabolism Changes in Immune Cells of the Tumour Microenvironment
3. The Role of Iron in Ferroptosis and Oxidative Stress in Cancer
4. Variability in the Iron Metabolism–Ferroptosis–Cancer Axis
5. Ferroptosis and Cancer Metastasis
5.1. Ferroptosis as a Barrier to Metastasis
5.2. Ferroptosis as a Potential Promoter of Metastasis
5.3. Organ-Specific Effects of Ferroptosis in Metastasis
6. Ferroptosis and Drug Resistance Mechanisms
7. Therapeutic Targeting of Iron Metabolism and Ferroptosis in Cancer
7.1. Iron Chelation Therapy in Oncology
7.2. Molecular and Cellular Mechanisms of Iron-Chelating Agents
7.3. Modulation of Ferroptosis by Iron-Chelating Drugs
8. Clinical Translation of Ferroptosis-Based Therapies
8.1. Ferroptosis-Inducing and Modulating Agents in Clinical Trials
8.2. Iron-Chelating Agents as Anti-Ferroptotic Modulators in Clinical Trials
8.3. Biomarkers and Patient Stratification for Ferroptosis-Based Therapies
9. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ACSL3 | Acyl-CoA synthetase long-chain family member 3 |
| ACSL4 | Acyl-CoA synthetase long-chain family member 4 |
| AIDS | Acquired immunodeficiency syndrome |
| AML | Acute myelogenous leukaemia |
| AP-1 | Activator protein-1 |
| ApoE | Apolipoprotein E |
| ATF3 | Activating transcription factor 3 |
| ATF4 | Activating transcription factor 4 |
| BRCA | Breast cancer susceptibility gene (BRCA1/BRCA2) |
| CAF | Cancer-associated fibroblast |
| CNNM4 | Cyclin M4 (magnesium transporter) |
| CNSI-Fe | Carbon nanoparticle-loaded iron(II) system |
| CRC | Colorectal cancer |
| DF | Deferoxamine |
| DFRA | Deferasirox |
| EGFR | Epidermal growth factor receptor |
| ELOVL6 | Elongation of very long-chain fatty acids protein 6 |
| EMT | Epithelial–mesenchymal transition |
| ERK1/2 | Extracellular signal-regulated kinase 1/2 |
| FABPs | Fatty acid-binding proteins |
| Fe | Iron |
| FSP1 | Ferroptosis suppressor protein 1 |
| FTH | Ferritin heavy chain |
| FTL | Ferritin light chain |
| GBM | Glioblastoma |
| γ-GCS | Gamma-glutamylcysteine synthetase |
| GPX4 | Glutathione peroxidase 4 |
| GSH | Glutathione |
| 4-HNE | 4-Hydroxynonenal |
| HCC | Hepatocellular carcinoma |
| HIF | Hypoxia-inducible factor |
| JNK | c-Jun N-terminal kinase |
| KRAS | Kirsten rat sarcoma viral oncogene homolog |
| L1 | Deferiprone |
| LIP | Labile iron pool |
| LMWt Fe | Low-molecular-weight intracellular iron pool |
| LMWt PFe | Low-molecular-weight plasma iron pool |
| lncRNA | Long non-coding RNA |
| METTL3 | Methyltransferase-like 3 |
| MRI | Magnetic resonance imaging |
| mtDNA | Mitochondrial DNA |
| MUFA | Monounsaturated fatty acid |
| ncRNA | Non-coding RNA |
| NDRG1 | N-MYC downstream-regulated gene 1 |
| NK | Natural killer cells |
| NRF2 | Nuclear factor erythroid 2-related factor 2 |
| NSCLC | Non-small cell lung cancer |
| PARP | Poly(ADP-ribose) polymerase |
| PDAC | Pancreatic ductal adenocarcinoma |
| PGK1 | Phosphoglycerate kinase 1 |
| PUFA | Polyunsaturated fatty acid |
| RAS | Rat sarcoma viral oncogene family |
| RCC | Renal cell carcinoma |
| ROS | Reactive oxygen species |
| SIRT3 | Sirtuin 3 |
| SLC40A1 | Solute carrier family 40 member 1 (ferroportin) |
| SLC7A11 | Solute carrier family 7 member 11 |
| SNHG3 | Small nucleolar RNA host gene 3 |
| SOD1 | Superoxide dismutase 1 |
| SREBP2 | Sterol regulatory element-binding protein 2 |
| STAT3 | Signal transducer and activator of transcription 3 |
| STEAP4 | Six-transmembrane epithelial antigen of prostate 4 |
| STING | Stimulator of interferon genes |
| TAM | Tumour-associated macrophage |
| TAN | Tumour-associated neutrophil |
| TAZ | Transcriptional coactivator with PDZ-binding motif |
| TME | Tumour microenvironment |
| TNBC | Triple-negative breast cancer |
| Treg | Regulatory T cell |
| TrR | Transferrin receptor 1 |
| YAP | Yes-associated protein |
References
- Siegel, R.L.; Kratzer, T.B.; Giaquinto, A.N.; Sung, H.; Jemal, A. Cancer Statistics, 2025. CA Cancer J. Clin. 2025, 75, 10–45. [Google Scholar] [CrossRef] [Scilit]
- Cao, W.; Chen, H.-D.; Yu, Y.-W.; Li, N.; Chen, W.-Q. Changing Profiles of Cancer Burden Worldwide and in China: A Secondary Analysis of the Global Cancer Statistics 2020. Chin. Med. J. 2021, 134, 783–791. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sung, H.; Ferlay, J.; Siegel, R.L.; Laversanne, M.; Soerjomataram, I.; Jemal, A.; Bray, F. Global Cancer Statistics 2020: GLOBOCAN Estimates of Incidence and Mortality Worldwide for 36 Cancers in 185 Countries. CA Cancer J. Clin. 2021, 71, 209–249. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bizuayehu, H.M.; Dadi, A.F.; Ahmed, K.Y.; Tegegne, T.K.; Hassen, T.A.; Kibret, G.D.; Ketema, D.B.; Bore, M.G.; Thapa, S.; Odo, D.B.; et al. Burden of 30 Cancers among Men: Global Statistics in 2022 and Projections for 2050 Using Population-based Estimates. Cancer 2024, 130, 3708–3723. [Google Scholar] [CrossRef] [Scilit]
- Bhangdia, K.; May, M.L.; Kocarnik, J.M.; Pritchett, N.; Crist, A.; Penberthy, L.; Acheson, A.; Deitesfeld, L.; Aalruz, H.; Ababneh, H.S.; et al. Global, Regional, and National Burden of Breast Cancer among Females, 1990–2023, with Forecasts to 2050: A Systematic Analysis for the Global Burden of Disease Study 2023. Lancet Oncol. 2026, 27, 302–326. [Google Scholar] [CrossRef] [Scilit]
- Bukowski, K.; Kciuk, M.; Kontek, R. Mechanisms of Multidrug Resistance in Cancer Chemotherapy. Int. J. Mol. Sci. 2020, 21, 3233. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, Y.-J.; Lei, Y.-H.; Yao, N.; Wang, C.-R.; Hu, N.; Ye, W.-C.; Zhang, D.-M.; Chen, Z.-S. Autophagy and Multidrug Resistance in Cancer. Chin. J. Cancer 2017, 36, 52. [Google Scholar] [CrossRef] [Scilit]
- Said, S.S.; Ibrahim, W.N. Cancer Resistance to Immunotherapy: Comprehensive Insights with Future Perspectives. Pharmaceutics 2023, 15, 1143. [Google Scholar] [CrossRef] [Scilit]
- Wang, C.; Li, F.; Zhang, T.; Yu, M.; Sun, Y. Recent Advances in Anti-Multidrug Resistance for Nano-Drug Delivery System. Drug Deliv. 2022, 29, 1684–1697. [Google Scholar] [CrossRef] [Scilit]
- Singh, M.S.; Tammam, S.N.; Shetab Boushehri, M.A.; Lamprecht, A. MDR in Cancer: Addressing the Underlying Cellular Alterations with the Use of Nanocarriers. Pharmacol. Res. 2017, 126, 2–30. [Google Scholar] [CrossRef] [Scilit]
- Juthani, R.; Punatar, S.; Mittra, I. New Light on Chemotherapy Toxicity and Its Prevention. BJC Rep. 2024, 2, 41. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Basak, D.; Arrighi, S.; Darwiche, Y.; Deb, S. Comparison of Anticancer Drug Toxicities: Paradigm Shift in Adverse Effect Profile. Life 2021, 12, 48. [Google Scholar] [CrossRef] [Scilit]
- Wheler, J.J.; Tsimberidou, A.M.; Hong, D.S.; Naing, A.; Falchook, G.S.; Fu, S.; Moulder, S.; Stephen, B.; Wen, S.; Kurzrock, R. Risk of Serious Toxicity in 1181 Patients Treated in Phase I Clinical Trials of Predominantly Targeted Anticancer Drugs: The M. D. Anderson Cancer Center Experience. Ann. Oncol. 2012, 23, 1963–1967. [Google Scholar] [CrossRef] [Scilit]
- Lee, E.M.; Jiménez-Fonseca, P.; Galán-Moral, R.; Coca-Membribes, S.; Fernández-Montes, A.; Sorribes, E.; García-Torralba, E.; Puntí-Brun, L.; Gil-Raga, M.; Cano-Cano, J.; et al. Toxicities and Quality of Life during Cancer Treatment in Advanced Solid Tumors. Curr. Oncol. 2023, 30, 9205–9216. [Google Scholar] [CrossRef] [Scilit]
- Welch, D.R.; Hurst, D.R. Defining the Hallmarks of Metastasis. Cancer Res. 2019, 79, 3011–3027. [Google Scholar] [CrossRef] [Scilit]
- Ramaswamy, S.; Ross, K.N.; Lander, E.S.; Golub, T.R. A Molecular Signature of Metastasis in Primary Solid Tumors. Nat. Genet. 2003, 33, 49–54. [Google Scholar] [CrossRef] [Scilit]
- Mani, K.; Deng, D.; Lin, C.; Wang, M.; Hsu, M.L.; Zaorsky, N.G. Causes of Death among People Living with Metastatic Cancer. Nat. Commun. 2024, 15, 1519. [Google Scholar] [CrossRef] [Scilit]
- Li, Y.; Liu, F.; Cai, Q.; Deng, L.; Ouyang, Q.; Zhang, X.H.-F.; Zheng, J. Invasion and Metastasis in Cancer: Molecular Insights and Therapeutic Targets. Signal Transduct. Target. Ther. 2025, 10, 57. [Google Scholar] [CrossRef] [Scilit]
- Ganesh, K.; Massagué, J. Targeting Metastatic Cancer. Nat. Med. 2021, 27, 34–44. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, M.; Yang, J.; Xu, B.; Zhang, X. Tumor Metastasis: Mechanistic Insights and Therapeutic Interventions. MedComm 2021, 2, 587–617. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kontoghiorghes, G.J. New Iron Metabolic Pathways and Chelation Targeting Strategies Affecting the Treatment of All Types and Stages of Cancer. Int. J. Mol. Sci. 2022, 23, 13990. [Google Scholar] [CrossRef] [Scilit]
- Kourti, M.; Kontoghiorghes, G.J. Targeting Aging and Diseases Associated with Ferroptosis and Senescence Through Modulation of Iron, Oxidative Stress and Lipid Peroxidation. Antioxidants 2025, 15, 15. [Google Scholar] [CrossRef] [Scilit]
- Wu, Y.; Zhang, K.; Jiang, N.; Chen, Z.; Sun, X.; Zha, H.; Lin, M.; Li, J.; Pan, X.; Chen, J.; et al. Iron-Fueled Ferroptosis: A New Axis for Immunomodulation to Overcome Cancer Drug Resistance—From Immune Microenvironment Crosstalk to Therapeutic Translation. Front. Immunol. 2026, 16, 1726210. [Google Scholar] [CrossRef] [Scilit]
- Zeidan, R.S.; Yoon, H.-S.; Yang, J.J.; Sobh, A.; Braithwaite, D.; Mankowski, R.; Leeuwenburgh, C.; Anton, S. Iron and Cancer: Overview of the Evidence from Population-Based Studies. Front. Oncol. 2024, 14, 1393195. [Google Scholar] [CrossRef] [Scilit]
- Huang, X. Iron Overload and Its Association with Cancer Risk in Humans: Evidence for Iron as a Carcinogenic Metal. Mutat. Res.-Fundam. Mol. Mech. Mutagen. 2003, 533, 153–171. [Google Scholar] [CrossRef] [Scilit]
- Torti, S.V.; Manz, D.H.; Paul, B.T.; Blanchette-Farra, N.; Torti, F.M. Iron and Cancer. Annu. Rev. Nutr. 2018, 38, 97–125. [Google Scholar] [CrossRef] [Scilit]
- Hsu, M.Y.; Mina, E.; Roetto, A.; Porporato, P.E. Iron: An Essential Element of Cancer Metabolism. Cells 2020, 9, 2591. [Google Scholar] [CrossRef] [Scilit]
- Łęcka, M.; Słomka, A.; Albrecht, K.; Romiszewski, M.; Styczyński, J. Iron Dysregulation Signature in Pediatric Leukemia: In-Depth Biomarkers of Iron Metabolism Involving Matriptase-2 and Neogenin-1. Cancers 2025, 17, 2495. [Google Scholar] [CrossRef] [Scilit]
- Kontoghiorghes, G.J.; Kolnagou, A.; Peng, C.-T.; Shah, S.V.; Aessopos, A. Safety Issues of Iron Chelation Therapy in Patients with Normal Range Iron Stores Including Thalassaemia, Neurodegenerative, Renal and Infectious Diseases. Expert Opin. Drug Saf. 2010, 9, 201–206. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kontoghiorghes, G.J. How to Manage Iron Toxicity in Post-Allogeneic Hematopoietic Stem Cell Transplantation? Expert Rev. Hematol. 2020, 13, 299–302. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kontoghiorghes, G.J. A New Era in Iron Chelation Therapy: The Design of Optimal, Individually Adjusted Iron Chelation Therapies for the Complete Removal of Iron Overload in Thalassemia and Other Chronically Transfused Patients. Hemoglobin 2009, 33, 332–338. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Brown, R.A.M.; Richardson, K.L.; Kabir, T.D.; Trinder, D.; Ganss, R.; Leedman, P.J. Altered Iron Metabolism and Impact in Cancer Biology, Metastasis, and Immunology. Front. Oncol. 2020, 10, 476. [Google Scholar] [CrossRef] [Scilit]
- Lin, L.; Yin, X.; Guan, Y. Decoding Iron Deficiency in Cancer: Mechanisms, Immune Modulation, and Therapeutic Potential. Front. Nutr. 2025, 12, 1650929. [Google Scholar] [CrossRef] [Scilit]
- Ciscar, M.; Rodríguez-Santana, C.; Santana-Codina, N. Iron and Metabolic Rewiring in Cancer. Oncogenesis 2026, 15, 1. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Glabman, R.A.; Choyke, P.L.; Sato, N. Cancer-Associated Fibroblasts: Tumorigenicity and Targeting for Cancer Therapy. Cancers 2022, 14, 3906. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sacco, A.; Battaglia, A.M.; Botta, C.; Aversa, I.; Mancuso, S.; Costanzo, F.; Biamonte, F. Iron Metabolism in the Tumor Microenvironment—Implications for Anti-Cancer Immune Response. Cells 2021, 10, 303. [Google Scholar] [CrossRef] [Scilit]
- Justus, C.R.; Dong, L.; Yang, L.V. Acidic Tumor Microenvironment and PH-Sensing G Protein-Coupled Receptors. Front. Physiol. 2013, 4, 354. [Google Scholar] [CrossRef] [Scilit]
- Lei, G.; Zhuang, L.; Gan, B. Targeting Ferroptosis as a Vulnerability in Cancer. Nat. Rev. Cancer 2022, 22, 381–396. [Google Scholar] [CrossRef] [Scilit]
- Wang, D.; Tang, L.; Zhang, Y.; Ge, G.; Jiang, X.; Mo, Y.; Wu, P.; Deng, X.; Li, L.; Zuo, S.; et al. Regulatory Pathways and Drugs Associated with Ferroptosis in Tumors. Cell Death Dis. 2022, 13, 544. [Google Scholar] [CrossRef] [Scilit]
- Wang, Y.; Chen, Q.; Song, H.; Zhang, Y.; Chen, H.; Liu, P.; Sun, T.; Jiang, C. A Triple Therapeutic Strategy with Antiexosomal Iron Efflux for Enhanced Ferroptosis Therapy and Immunotherapy. Small 2022, 18, 1704. [Google Scholar] [CrossRef] [Scilit]
- Gao, M.; Monian, P.; Pan, Q.; Zhang, W.; Xiang, J.; Jiang, X. Ferroptosis Is an Autophagic Cell Death Process. Cell Res. 2016, 26, 1021–1032. [Google Scholar] [CrossRef] [Scilit]
- Zhuang, Y.; Tong, L.; Sun, X. Acidic Tumor Microenvironments and Emerging Therapeutic Strategies for Cancer Therapy. Yonsei Med. J. 2025, 66, 619. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bogdanov, A.; Bogdanov, A.; Chubenko, V.; Volkov, N.; Moiseenko, F.; Moiseyenko, V. Tumor Acidity: From Hallmark of Cancer to Target of Treatment. Front. Oncol. 2022, 12, 979154. [Google Scholar] [CrossRef] [Scilit]
- Kontoghiorghe, C.N.; Kolnagou, A.; Kontoghiorghes, G.J. Potential Clinical Applications of Chelating Drugs in Diseases Targeting Transferrin-Bound Iron and Other Metals. Expert Opin. Investig. Drugs 2013, 22, 591–618. [Google Scholar] [CrossRef] [Scilit]
- Cassetta, L.; Fragkogianni, S.; Sims, A.H.; Swierczak, A.; Forrester, L.M.; Zhang, H.; Soong, D.Y.H.; Cotechini, T.; Anur, P.; Lin, E.Y.; et al. Human Tumor-Associated Macrophage and Monocyte Transcriptional Landscapes Reveal Cancer-Specific Reprogramming, Biomarkers, and Therapeutic Targets. Cancer Cell 2019, 35, 588–602.e10. [Google Scholar] [CrossRef] [Scilit]
- Chevrier, S.; Levine, J.H.; Zanotelli, V.R.T.; Silina, K.; Schulz, D.; Bacac, M.; Ries, C.H.; Ailles, L.; Jewett, M.A.S.; Moch, H.; et al. An Immune Atlas of Clear Cell Renal Cell Carcinoma. Cell 2017, 169, 736–749.e18. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wagner, J.; Rapsomaniki, M.A.; Chevrier, S.; Anzeneder, T.; Langwieder, C.; Dykgers, A.; Rees, M.; Ramaswamy, A.; Muenst, S.; Soysal, S.D.; et al. A Single-Cell Atlas of the Tumor and Immune Ecosystem of Human Breast Cancer. Cell 2019, 177, 1330–1345.e18. [Google Scholar] [CrossRef] [Scilit]
- Cuccarese, M.F.; Dubach, J.M.; Pfirschke, C.; Engblom, C.; Garris, C.; Miller, M.A.; Pittet, M.J.; Weissleder, R. Heterogeneity of Macrophage Infiltration and Therapeutic Response in Lung Carcinoma Revealed by 3D Organ Imaging. Nat. Commun. 2017, 8, 14293. [Google Scholar] [CrossRef] [Scilit]
- Kontoghiorghes, G.J. Iron Load Toxicity in Medicine: From Molecular and Cellular Aspects to Clinical Implications. Int. J. Mol. Sci. 2023, 24, 12928. [Google Scholar] [CrossRef] [Scilit]
- Gaetano, C.; Massimo, L.; Alberto, M. Control of Iron Homeostasis as a Key Component of Macrophage Polarization. Haematologica 2010, 95, 1801–1803. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Vallelian, F.; Buehler, P.W.; Schaer, D.J. Hemolysis, Free Hemoglobin Toxicity, and Scavenger Protein Therapeutics. Blood 2022, 140, 1837–1844. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cassetta, L.; Cassol, E.; Poli, G. Macrophage Polarization in Health and Disease. Sci. World J. 2011, 11, 2391–2402. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Pérez, S.; Rius-Pérez, S. Macrophage Polarization and Reprogramming in Acute Inflammation: A Redox Perspective. Antioxidants 2022, 11, 1394. [Google Scholar] [CrossRef] [Scilit]
- Recalcati, S.; Locati, M.; Marini, A.; Santambrogio, P.; Zaninotto, F.; De Pizzol, M.; Zammataro, L.; Girelli, D.; Cairo, G. Differential Regulation of Iron Homeostasis during Human Macrophage Polarized Activation. Eur. J. Immunol. 2010, 40, 824–835. [Google Scholar] [CrossRef] [Scilit]
- Pinnix, Z.K.; Miller, L.D.; Wang, W.; D’Agostino, R.; Kute, T.; Willingham, M.C.; Hatcher, H.; Tesfay, L.; Sui, G.; Di, X.; et al. Ferroportin and Iron Regulation in Breast Cancer Progression and Prognosis. Sci. Transl. Med. 2010, 2, 43ra56. [Google Scholar] [CrossRef]
- Zhao, D.; Guo, M.; Zhang, Y.; Liu, H.; Ding, X.; Yuan, X.; Wang, X. Ferroptosis as a Precise Target for Tumor-Associated Neutrophils: From Molecular Insights to Targeted Therapies. Int. Immunopharmacol. 2025, 167, 115647. [Google Scholar] [CrossRef] [Scilit]
- Si, Q.; Wang, Y.; Lu, W.; Liu, Z.; Song, Y.; Chen, S.; Xia, S.; Li, H.; Weng, P.; Jing, Y.; et al. Transferrin Receptor Uptakes Iron from Tumor-Associated Neutrophils to Regulate Invasion Patterns of OSCC. Cancer Immunol. Immunother. 2025, 74, 43. [Google Scholar] [CrossRef] [Scilit]
- Liang, W.; Ferrara, N. Iron Metabolism in the Tumor Microenvironment: Contributions of Innate Immune Cells. Front. Immunol. 2021, 11, 626812. [Google Scholar] [CrossRef] [Scilit]
- Ni, S.; Yuan, Y.; Kuang, Y.; Li, X. Iron Metabolism and Immune Regulation. Front. Immunol. 2022, 13, 816282. [Google Scholar] [CrossRef] [Scilit]
- Zhou, Y.; Shen, G.; Zhou, X.; Li, J. Therapeutic Potential of Tumor-Associated Neutrophils: Dual Role and Phenotypic Plasticity. Signal Transduct. Target. Ther. 2025, 10, 178. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Mukaida, N.; Sasaki, S.; Baba, T. Two-Faced Roles of Tumor-Associated Neutrophils in Cancer Development and Progression. Int. J. Mol. Sci. 2020, 21, 3457. [Google Scholar] [CrossRef] [Scilit]
- Liang, W.; Li, Q.; Ferrara, N. Metastatic Growth Instructed by Neutrophil-Derived Transferrin. Proc. Natl. Acad. Sci. USA 2018, 115, 11060–11065. [Google Scholar] [CrossRef] [Scilit]
- Liu, Y.; Sun, Q.; Guo, J.; Yan, L.; Yan, Y.; Gong, Y.; Lin, J.; Yuan, H.; Jin, J.; Wang, B.; et al. Dual Ferroptosis Induction in N2-TANs and TNBC Cells via FTH1 Targeting: A Therapeutic Strategy for Triple-Negative Breast Cancer. Cell Rep. Med. 2025, 6, 101915. [Google Scholar] [CrossRef] [Scilit]
- Wu, Q.; Carlos, A.R.; Braza, F.; Bergman, M.-L.; Kitoko, J.Z.; Bastos-Amador, P.; Cuadrado, E.; Martins, R.; Oliveira, B.S.; Martins, V.C.; et al. Ferritin Heavy Chain Supports Stability and Function of the Regulatory T Cell Lineage. EMBO J. 2024, 43, 1445–1483. [Google Scholar] [CrossRef] [Scilit]
- Huang, W.; Hu, M.; Zhang, Y.; Han, Y.; Hou, J. Tumor Potential Biomarker: Ferritin Heavy Chain Promotes Proliferation and Migration of Oral Squamous Cell Carcinoma. Oral Surg. Oral Med. Oral Pathol. Oral Radiol. 2026, 141, 357–366. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hu, Z.-W.; Chen, L.; Ma, R.-Q.; Wei, F.-Q.; Wen, Y.-H.; Zeng, X.-L.; Sun, W.; Wen, W.-P. Comprehensive Analysis of Ferritin Subunits Expression and Positive Correlations with Tumor-Associated Macrophages and T Regulatory Cells Infiltration in Most Solid Tumors. Aging 2021, 13, 11491–11506. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Coënon, L.; Geindreau, M.; Ghiringhelli, F.; Villalba, M.; Bruchard, M. Natural Killer Cells at the Frontline in the Fight against Cancer. Cell Death Dis. 2024, 15, 614. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wang, D.; Dou, L.; Sui, L.; Xue, Y.; Xu, S. Natural Killer Cells in Cancer Immunotherapy. MedComm 2024, 5, e626. [Google Scholar] [CrossRef] [Scilit]
- Jiang, P.; Jing, S.; Sheng, G.; Jia, F. The Basic Biology of NK Cells and Its Application in Tumor Immunotherapy. Front. Immunol. 2024, 15, 1420205. [Google Scholar] [CrossRef] [Scilit]
- Yao, L.; Hou, J.; Wu, X.; Lu, Y.; Jin, Z.; Yu, Z.; Yu, B.; Li, J.; Yang, Z.; Li, C.; et al. Cancer-Associated Fibroblasts Impair the Cytotoxic Function of NK Cells in Gastric Cancer by Inducing Ferroptosis via Iron Regulation. Redox Biol. 2023, 67, 102923. [Google Scholar] [CrossRef] [Scilit]
- Sottile, R.; Federico, G.; Garofalo, C.; Tallerico, R.; Faniello, M.C.; Quaresima, B.; Cristiani, C.M.; Di Sanzo, M.; Cuda, G.; Ventura, V.; et al. Iron and Ferritin Modulate MHC Class I Expression and NK Cell Recognition. Front. Immunol. 2019, 10, 224. [Google Scholar] [CrossRef] [Scilit]
- Dixon, S.J.; Lemberg, K.M.; Lamprecht, M.R.; Skouta, R.; Zaitsev, E.M.; Gleason, C.E.; Patel, D.N.; Bauer, A.J.; Cantley, A.M.; Yang, W.S.; et al. Ferroptosis: An Iron-Dependent Form of Nonapoptotic Cell Death. Cell 2012, 149, 1060–1072. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Feng, S.; Tang, D.; Wang, Y.; Li, X.; Bao, H.; Tang, C.; Dong, X.; Li, X.; Yang, Q.; Yan, Y.; et al. The Mechanism of Ferroptosis and Its Related Diseases. Mol. Biomed. 2023, 4, 33. [Google Scholar] [CrossRef] [Scilit]
- Ursini, F.; Maiorino, M. Lipid Peroxidation and Ferroptosis: The Role of GSH and GPx4. Free Radic. Biol. Med. 2020, 152, 175–185. [Google Scholar] [CrossRef] [Scilit]
- Lee, J.-Y.; Nam, M.; Son, H.Y.; Hyun, K.; Jang, S.Y.; Kim, J.W.; Kim, M.W.; Jung, Y.; Jang, E.; Yoon, S.-J.; et al. Polyunsaturated Fatty Acid Biosynthesis Pathway Determines Ferroptosis Sensitivity in Gastric Cancer. Proc. Natl. Acad. Sci. USA 2020, 117, 32433–32442. [Google Scholar] [CrossRef] [Scilit]
- Tousignant, K.D.; Rockstroh, A.; Poad, B.L.J.; Talebi, A.; Young, R.S.E.; Taherian Fard, A.; Gupta, R.; Zang, T.; Wang, C.; Lehman, M.L.; et al. Therapy-Induced Lipid Uptake and Remodeling Underpin Ferroptosis Hypersensitivity in Prostate Cancer. Cancer Metab. 2020, 8, 11. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Toyokuni, S.; Kong, Y.; Maeda, Y.; Lyu, Q.; Ohara, Y.; Sato, K.; Motooka, Y.; Nakamura, K.; Tanaka, H. Ferroptosis and Cancer: When Iron Turns against Tumors. Cell. Mol. Life Sci. 2025, 83, 16. [Google Scholar] [CrossRef] [Scilit]
- Zhao, X.; Li, X.; Xu, Y. Ferroptosis: A Dual-Edged Sword in Tumour Growth. Front. Pharmacol. 2024, 14, 1330910. [Google Scholar] [CrossRef] [Scilit]
- Chen, S.; Ma, J.; Tang, J.; Yang, Y.; Zhou, S.; Feng, P. Research Progress of Macrophage Ferroptosis in Inflammatory Bowel Disease and Inflammation-Cancer Transformation. Front. Immunol. 2025, 16, 1658280. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, J.; Qian, Z.; Li, Z.; Mao, X.; Tian, A.; Peng, X.; Yang, Z.; Yang, K. Annexin A5 Ameliorates Immune-Mediated Liver Injury by Regulating Ferritinophagy–Ferroptosis in M2 Macrophages via the NRF2/ERK Pathway. Cell. Signal. 2026, 141, 112366. [Google Scholar] [CrossRef] [Scilit]
- Zhou, X.; Xu, S.; Li, A.; Shan, N. Macrophage Ferroptosis in Hematologic Malignancies: Emerging Mechanisms and Therapeutic Implications. Apoptosis 2026, 31, 33. [Google Scholar] [CrossRef] [Scilit]
- Greene, C.J.; Attwood, K.; Sharma, N.J.; Balderman, B.; Deng, R.; Muhitch, J.B.; Smith, G.J.; Gross, K.W.; Xu, B.; Kauffman, E.C. Iron Accumulation Typifies Renal Cell Carcinoma Tumorigenesis but Abates with Pathological Progression, Sarcomatoid Dedifferentiation, and Metastasis. Front. Oncol. 2022, 12, 923043. [Google Scholar] [CrossRef] [Scilit]
- Greene, C.J.; Sharma, N.J.; Fiorica, P.N.; Forrester, E.; Smith, G.J.; Gross, K.W.; Kauffman, E.C. Suppressive Effects of Iron Chelation in Clear Cell Renal Cell Carcinoma and Their Dependency on VHL Inactivation. Free Radic. Biol. Med. 2019, 133, 295–309. [Google Scholar] [CrossRef] [Scilit]
- Schnetz, M.; Meier, J.K.; Rehwald, C.; Mertens, C.; Urbschat, A.; Tomat, E.; Akam, E.A.; Baer, P.; Roos, F.C.; Brüne, B.; et al. The Disturbed Iron Phenotype of Tumor Cells and Macrophages in Renal Cell Carcinoma Influences Tumor Growth. Cancers 2020, 12, 530. [Google Scholar] [CrossRef] [Scilit]
- Cohen, L.A.; Gutierrez, L.; Weiss, A.; Leichtmann-Bardoogo, Y.; Zhang, D.; Crooks, D.R.; Sougrat, R.; Morgenstern, A.; Galy, B.; Hentze, M.W.; et al. Serum Ferritin Is Derived Primarily from Macrophages through a Nonclassical Secretory Pathway. Blood 2010, 116, 1574–1584. [Google Scholar] [CrossRef] [Scilit]
- Kell, D.B.; Pretorius, E. Serum Ferritin Is an Important Inflammatory Disease Marker, as It Is Mainly a Leakage Product from Damaged Cells. Metallomics 2014, 6, 748–773. [Google Scholar] [CrossRef] [Scilit]
- Kolnagou, A.; Economides, C.; Eracleous, E.; Kontoghiorghes, G. Low Serum Ferritin Levels Are Misleading for Detecting Cardiac Iron Overload and Increase the Risk of Cardiomyopathy in Thalassemia Patients. The Importance of Cardiac Iron Overload Monitoring Using Magnetic Resonance Imaging T2 and T2*. Hemoglobin 2006, 30, 219–227. [Google Scholar] [CrossRef] [Scilit]
- Wang, J.; An, W.; Pang, Z.; Zhao, M.; Xu, A.; Zhao, J. The TFRC as a Prognostic Biomarker and Potential Therapeutic Target in Cervical Cancer: A Preliminary Study. Front. Oncol. 2025, 15, 1523137. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kontoghiorghes, G.J.; Efstathiou, A.; Ioannou-Loucaides, S.; Kolnagou, A. Chelators Controlling Metal Metabolism and Toxicity Pathways: Applications in Cancer Prevention, Diagnosis and Treatment. Hemoglobin 2008, 32, 217–227. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fontana, F.; Esser, A.K.; Egbulefu, C.; Karmakar, P.; Su, X.; Allen, J.S.; Xu, Y.; Davis, J.L.; Gabay, A.; Xiang, J.; et al. Transferrin Receptor in Primary and Metastatic Breast Cancer: Evaluation of Expression and Experimental Modulation to Improve Molecular Targeting. PLoS ONE 2023, 18, e0293700. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Shen, Y.; Li, X.; Dong, D.; Zhang, B.; Xue, Y.; Shang, P. Transferrin Receptor 1 in Cancer: A New Sight for Cancer Therapy. Am. J. Cancer Res. 2018, 8, 916–931. [Google Scholar] [PubMed]
- Johnson, I.R.D.; Parkinson-Lawrence, E.J.; Shandala, T.; Weigert, R.; Butler, L.M.; Brooks, D.A. Altered Endosome Biogenesis in Prostate Cancer Has Biomarker Potential. Mol. Cancer Res. 2014, 12, 1851–1862. [Google Scholar] [CrossRef] [Scilit]
- Baldanzi, G.; Larsson, A.; Sayols-Baixeras, S.; Dekkers, K.F.; Hammar, U.; Nguyen, D.; Graells, T.; Ahmad, S.; Gazolla Volpiano, C.; Meric, G.; et al. Antibiotic Use and Gut Microbiome Composition Links from Individual-Level Prescription Data of 14,979 Individuals. Nat. Med. 2026, 32, 1351–1361. [Google Scholar] [CrossRef] [Scilit]
- Patrick, D.M.; Sbihi, H.; Dai, D.L.Y.; Al Mamun, A.; Rasali, D.; Rose, C.; Marra, F.; Boutin, R.C.T.; Petersen, C.; Stiemsma, L.T.; et al. Decreasing Antibiotic Use, the Gut Microbiota, and Asthma Incidence in Children: Evidence from Population-Based and Prospective Cohort Studies. Lancet Respir. Med. 2020, 8, 1094–1105. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dillekås, H.; Rogers, M.S.; Straume, O. Are 90% of Deaths from Cancer Caused by Metastases? Cancer Med. 2019, 8, 5574–5576. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lanzardo, S.; Conti, L.; Rooke, R.; Ruiu, R.; Accart, N.; Bolli, E.; Arigoni, M.; Macagno, M.; Barrera, G.; Pizzimenti, S.; et al. Immunotargeting of Antigen XCT Attenuates Stem-like Cell Behavior and Metastatic Progression in Breast Cancer. Cancer Res. 2016, 76, 62–72. [Google Scholar] [CrossRef] [Scilit]
- Bolli, E.; O’Rourke, J.P.; Conti, L.; Lanzardo, S.; Rolih, V.; Christen, J.M.; Barutello, G.; Forni, M.; Pericle, F.; Cavallo, F. A Virus-Like-Particle Immunotherapy Targeting Epitope-Specific Anti-XCT Expressed on Cancer Stem Cell Inhibits the Progression of Metastatic Cancer In Vivo. Oncoimmunology 2018, 7, e1408746. [Google Scholar] [CrossRef] [Scilit]
- Lei, M.; Zhang, Y.-L.; Huang, F.-Y.; Chen, H.-Y.; Chen, M.-H.; Wu, R.-H.; Dai, S.-Z.; He, G.-S.; Tan, G.-H.; Zheng, W.-P. Gankyrin Inhibits Ferroptosis through the P53/SLC7A11/GPX4 Axis in Triple-Negative Breast Cancer Cells. Sci. Rep. 2023, 13, 21916. [Google Scholar] [CrossRef] [Scilit]
- Yan, Y.; Teng, H.; Hang, Q.; Kondiparthi, L.; Lei, G.; Horbath, A.; Liu, X.; Mao, C.; Wu, S.; Zhuang, L.; et al. SLC7A11 Expression Level Dictates Differential Responses to Oxidative Stress in Cancer Cells. Nat. Commun. 2023, 14, 3673. [Google Scholar] [CrossRef] [Scilit]
- Ma, X.; Cao, D.; Zhang, Y.; Ding, X.; Hu, Z.; Wang, J. Apatinib Combined with Paclitaxel Suppresses Synergistically TNBC Progression through Enhancing Ferroptosis Susceptibility Regulated SLC7A11/GPX4/ACSL4 Axis. Cell. Signal. 2025, 131, 111760. [Google Scholar] [CrossRef] [Scilit]
- Donofrio, G.; Tebaldi, G.; Lanzardo, S.; Ruiu, R.; Bolli, E.; Ballatore, A.; Rolih, V.; Macchi, F.; Conti, L.; Cavallo, F. Bovine Herpesvirus 4-Based Vector Delivering the Full Length XCT DNA Efficiently Protects Mice from Mammary Cancer Metastases by Targeting Cancer Stem Cells. Oncoimmunology 2018, 7, e1494108. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yang, Z.; Lian, X.; Luo, Y.; Ye, Q.; Guo, G.; Liu, G. Glutamine Synthetase Shields Triple-Negative Breast Cancer Cells from Ferroptosis in Metastasis Triggered by Glutamine Deprivation. Breast Cancer Res. 2025, 27, 165. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- He, C.; Peng, M.; Zeng, X.; Dong, H.; Sun, Z.; Xu, J.; Liu, M.; Liu, L.; Huang, Y.; Peng, Z.; et al. Microenvironmental G Protein-coupled Estrogen Receptor-mediated Glutamine Metabolic Coupling between Cancer-associated Fibroblasts and Triple-negative Breast Cancer Cells Governs Tumour Progression. Clin. Transl. Med. 2024, 14, e70131. [Google Scholar] [CrossRef] [Scilit]
- Gao, Y.; Huang, Y.; Zhao, Y.; Hu, P. Cancer-Associated Fibroblast-Secreted Exosomal MiR-454-3p Inhibits Lipid Metabolism and Ferroptosis in Breast Cancer by Targeting ACSL4. Naunyn. Schmiedebergs. Arch. Pharmacol. 2025, 398, 3925–3937. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Mao, Y.; Keller, E.T.; Garfield, D.H.; Shen, K.; Wang, J. Stromal Cells in Tumor Microenvironment and Breast Cancer. Cancer Metastasis Rev. 2013, 32, 303–315. [Google Scholar] [CrossRef] [Scilit]
- Leonteva, A.; Kazakova, A.; Berezutskaya, E.; Ilyina, A.; Sergeevichev, D.; Vladimirov, S.; Bogachek, M.; Vakhrushev, I.; Makarevich, P.; Richter, V.; et al. Heterotypic 3D Model of Breast Cancer Based on Tumor, Stromal and Endothelial Cells: Cytokines Interaction in the Tumor Microenvironment. Cells 2026, 15, 145. [Google Scholar] [CrossRef] [Scilit]
- Guo, W.; Duan, Z.; Wu, J.; Zhou, B.P. Epithelial-Mesenchymal Transition Promotes Metabolic Reprogramming to Suppress Ferroptosis. Semin. Cancer Biol. 2025, 112, 20–35. [Google Scholar] [CrossRef] [Scilit]
- Pisanu, M.E.; Iorio, E.; Facchiano, F.; Chirico, M.; Scattoni, M.L.; Tabolacci, C. Decoding the Role of Lipid Metabolism and Membrane Dynamics in Melanoma. Int. J. Mol. Sci. 2026, 27, 1715. [Google Scholar] [CrossRef] [Scilit]
- Wang, Y.; Hu, M.; Cao, J.; Wang, F.; Han, J.R.; Wu, T.W.; Li, L.; Yu, J.; Fan, Y.; Xie, G.; et al. ACSL4 and Polyunsaturated Lipids Support Metastatic Extravasation and Colonization. Cell 2025, 188, 412–429.e27. [Google Scholar] [CrossRef] [Scilit]
- Luo, T.; Wang, Y.; Wang, J. Ferroptosis Assassinates Tumor. J. Nanobiotechnol. 2022, 20, 467. [Google Scholar] [CrossRef] [Scilit]
- Wang, Q.; He, J.; Qi, Y.; Ye, Y.; Ye, J.; Zhou, M. Ultrasound-Enhanced Nano Catalyst with Ferroptosis-Apoptosis Combined Anticancer Strategy for Metastatic Uveal Melanoma. Biomaterials 2024, 305, 122458. [Google Scholar] [CrossRef] [Scilit]
- Groenewoud, A.; Yin, J.; Gelmi, M.C.; Alsafadi, S.; Nemati, F.; Decaudin, D.; Roman-Roman, S.; Kalirai, H.; Coupland, S.E.; Jochemsen, A.G.; et al. Patient-Derived Zebrafish Xenografts of Uveal Melanoma Reveal Ferroptosis as a Drug Target. Cell Death Discov. 2023, 9, 183. [Google Scholar] [CrossRef] [Scilit]
- Swords, E.; Kennedy, B.N.; Tonelotto, V. Assessment of Ferroptosis as a Promising Candidate for Metastatic Uveal Melanoma Treatment and Prognostication. Front. Pharmacol. 2024, 15, 1466896. [Google Scholar] [CrossRef] [Scilit]
- Gagliardi, M.; Cotella, D.; Santoro, C.; Corà, D.; Barlev, N.A.; Piacentini, M.; Corazzari, M. Aldo-Keto Reductases Protect Metastatic Melanoma from ER Stress-Independent Ferroptosis. Cell Death Dis. 2019, 10, 902. [Google Scholar] [CrossRef] [Scilit]
- Palma, M.; Chaufan, M.; Breuer, C.B.; Müller, S.; Sabatier, M.; Fraser, C.S.; Szylo, K.J.; Yavari, M.; Carmona, A.; Kaur, M.; et al. Lymph Node Environment Drives FSP1 Targetability in Metastasizing Melanoma. Nature 2026, 649, 477–486. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- More, S.; Bonnereau, J.; Wouters, D.; Spotbeen, X.; Karras, P.; Rizzollo, F.; Killian, T.; Venken, T.; Naulaerts, S.; Vervoort, E.; et al. Secreted Apoe Rewires Melanoma Cell State Vulnerability to Ferroptosis. Sci. Adv. 2024, 10, eadp6164. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hong, X.; Roh, W.; Sullivan, R.J.; Wong, K.H.K.; Wittner, B.S.; Guo, H.; Dubash, T.D.; Sade-Feldman, M.; Wesley, B.; Horwitz, E.; et al. The Lipogenic Regulator SREBP2 Induces Transferrin in Circulating Melanoma Cells and Suppresses Ferroptosis. Cancer Discov. 2021, 11, 678–695. [Google Scholar] [CrossRef] [Scilit]
- Li, Z.; Li, M.; Sun, S.; Bin, Y.; Zuo, S.; Huo, R.; Song, J.; Xue, G.; Lin, X.; Wu, J. APOE Modulates Ferroptosis to Drive Macrophage Polarization toward the M2 Type and Enhance PTC Migration and Invasion. Immunobiology 2025, 230, 152900. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kim, D.H.; Kim, W.D.; Kim, S.K.; Moon, D.H.; Lee, S.J. TGF-Β1-Mediated Repression of SLC7A11 Drives Vulnerability to GPX4 Inhibition in Hepatocellular Carcinoma Cells. Cell Death Dis. 2020, 11, 406. [Google Scholar] [CrossRef] [Scilit]
- Sun, R.; Lin, Z.; Wang, X.; Liu, L.; Huo, M.; Zhang, R.; Lin, J.; Xiao, C.; Li, Y.; Zhu, W.; et al. AADAC Protects Colorectal Cancer Liver Colonization from Ferroptosis through SLC7A11-Dependent Inhibition of Lipid Peroxidation. J. Exp. Clin. Cancer Res. 2022, 41, 284, Erratum in J. Exp. Clin. Cancer Res. 2022, 41, 313. https://doi.org/10.1186/s13046-022-02508-w. [Google Scholar] [CrossRef] [Scilit]
- Ren, H.; Wang, M.; Ma, X.; An, L.; Guo, Y.; Ma, H. METTL3 in Cancer-Associated Fibroblasts-Derived Exosomes Promotes the Proliferation and Metastasis and Suppresses Ferroptosis in Colorectal Cancer by Eliciting ACSL3 M6A Modification. Biol. Direct 2024, 19, 68. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yu, Z.; Tong, S.; Wang, C.; Wu, Z.; Ye, Y.; Wang, S.; Jiang, K. PPy@Fe3O4 Nanoparticles Inhibit the Proliferation and Metastasis of CRC via Suppressing the NF-KB Signaling Pathway and Promoting Ferroptosis. Front. Bioeng. Biotechnol. 2022, 10, 1001994, Erratum in Front. Bioeng. Biotechnol. 2022, 10, 1094064. https://doi.org/10.3389/fbioe.2022.1094064. Erratum in Front. Bioeng. Biotechnol. 2023, 11, 1148674. https://doi.org/10.3389/fbioe.2023.1148674. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yuan, Y.; Ni, S.; Zhuge, A.; Li, B.; Li, L. Iron Regulates the Warburg Effect and Ferroptosis in Colorectal Cancer. Front. Oncol. 2021, 11, 614778. [Google Scholar] [CrossRef] [Scilit]
- Sun, J.; Li, J.; Pantopoulos, K.; Liu, Y.; He, Y.; Kang, W.; Ye, X. The Clustering Status of Detached Gastric Cancer Cells Inhibits Anoikis-Induced Ferroptosis to Promote Metastatic Colonization. Cancer Cell Int. 2024, 24, 77. [Google Scholar] [CrossRef] [Scilit]
- Liang, X.; Niu, X.; Zhang, L.; Liu, C.; Zhao, X.; Chen, F.; Lin, Z. LINC02266 Promotes Proliferation and Metastasis and Inhibits Ferroptosis of Gastric Cancer Cells by Regulating AKT/ACSL4 Pathway. Mol. Cell. Biochem. 2025, 480, 5805–5820. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lu, D.; Yuan, L.; Wang, Z.; Xu, D.; Meng, F.; Jia, S.; Li, Y.; Li, W.; Nan, Y. Dioscin Induces Ferroptosis to Suppress the Metastasis of Gastric Cancer through the SLC7A11/GPX4 Axis. Free Radic. Res. 2025, 59, 426–441. [Google Scholar] [CrossRef] [Scilit]
- Zhai, J.; Min, J.; Gong, M. Induction of Ferroptosis by Brucine Suppresses Gastric Cancer Progression through the P53-Mediated SLCA711/ALOX12 Axis. Heliyon 2024, 10, e33674. [Google Scholar] [CrossRef] [Scilit]
- Lee, J.; Roh, J.-L. Epithelial-Mesenchymal Plasticity: Implications for Ferroptosis Vulnerability and Cancer Therapy. Crit. Rev. Oncol. Hematol. 2023, 185, 103964. [Google Scholar] [CrossRef] [Scilit]
- Zalyte, E.; Cicenas, J. Starvation Mediates Pancreatic Cancer Cell Sensitivity to Ferroptosis via ERK1/2, JNK and Changes in the Cell Mesenchymal State. Int. J. Mol. Med. 2022, 49, 84. [Google Scholar] [CrossRef] [Scilit]
- Gentile, F.; Arcaro, A.; Pizzimenti, S.; Daga, M.; Cetrangolo, G.P.; Dianzani, C.; Lepore, A.; Graf, M.; Ames, P.R.J.; Barrera, G. DNA Damage by Lipid Peroxidation Products: Implications in Cancer, Inflammation and Autoimmunity. AIMS Genet. 2017, 4, 103–137. [Google Scholar] [CrossRef] [Scilit]
- Guéraud, F. 4-Hydroxynonenal Metabolites and Adducts in Pre-Carcinogenic Conditions and Cancer. Free Radic. Biol. Med. 2017, 111, 196–208. [Google Scholar] [CrossRef] [Scilit]
- Ioannidis, M.; Tjepkema, J.; Uitbeijerse, M.R.P.; van den Bogaart, G. Immunomodulatory Effects of 4-Hydroxynonenal. Redox Biol. 2025, 85, 103719. [Google Scholar] [CrossRef] [Scilit]
- Dai, E.; Han, L.; Liu, J.; Xie, Y.; Zeh, H.J.; Kang, R.; Bai, L.; Tang, D. Ferroptotic Damage Promotes Pancreatic Tumorigenesis through a TMEM173/STING-Dependent DNA Sensor Pathway. Nat. Commun. 2020, 11, 6339. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, X.; Kang, R.; Kroemer, G.; Tang, D. Targeting Ferroptosis in Pancreatic Cancer: A Double-Edged Sword. Trends Cancer 2021, 7, 891–901. [Google Scholar] [CrossRef] [Scilit]
- Liu, J.; Dai, E.; Kang, R.; Kroemer, G.; Tang, D. The Dark Side of Ferroptosis in Pancreatic Cancer. Oncoimmunology 2021, 10, 1868691. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Chen, S.; Zhuo, A.; Tang, R.; Su, S.; Wen, B.; Wei, W.; Xie, J.; Yu, Z.; Rao, B.; Lu, J.; et al. A-to-I Edited SNHG3 Promotes Non-Small Cell Lung Cancer Metastasis by Promoting Fatty Acid Oxidation and Resisting Ferroptosis. Commun. Biol. 2025, 8, 1333. [Google Scholar] [CrossRef] [Scilit]
- Chen, E.I.; Hewel, J.; Krueger, J.S.; Tiraby, C.; Weber, M.R.; Kralli, A.; Becker, K.; Yates, J.R.; Felding-Habermann, B. Adaptation of Energy Metabolism in Breast Cancer Brain Metastases. Cancer Res. 2007, 67, 1472–1486. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Svokos, K.; Salhia, B.; Toms, S. Molecular Biology of Brain Metastasis. Int. J. Mol. Sci. 2014, 15, 9519–9530. [Google Scholar] [CrossRef] [Scilit]
- Liu, W.; Zhou, Y.; Duan, W.; Song, J.; Wei, S.; Xia, S.; Wang, Y.; Du, X.; Li, E.; Ren, C.; et al. Glutathione Peroxidase 4-dependent Glutathione High-consumption Drives Acquired Platinum Chemoresistance in Lung Cancer-derived Brain Metastasis. Clin. Transl. Med. 2021, 11, e517. [Google Scholar] [CrossRef] [Scilit]
- Nagpal, A.; Redvers, R.P.; Ling, X.; Ayton, S.; Fuentes, M.; Tavancheh, E.; Diala, I.; Lalani, A.; Loi, S.; David, S.; et al. Neoadjuvant Neratinib Promotes Ferroptosis and Inhibits Brain Metastasis in a Novel Syngeneic Model of Spontaneous HER2+ve Breast Cancer Metastasis. Breast Cancer Res. 2019, 21, 94. [Google Scholar] [CrossRef] [Scilit]
- Jeney, V. Clinical Impact and Cellular Mechanisms of Iron Overload-Associated Bone Loss. Front. Pharmacol. 2017, 8, 77. [Google Scholar] [CrossRef] [Scilit]
- von Brackel, F.N.; Oheim, R. Iron and Bones: Effects of Iron Overload, Deficiency and Anemia Treatments on Bone. JBMR Plus 2024, 8. [Google Scholar] [CrossRef] [Scilit]
- Ciosek, Ż.; Kot, K.; Rotter, I. Iron, Zinc, Copper, Cadmium, Mercury, and Bone Tissue. Int. J. Environ. Res. Public Health 2023, 20, 2197. [Google Scholar] [CrossRef] [Scilit]
- Xue, Y.; Wang, S.; Yin, Y.; Chai, X.; Zhou, Z.; Li, H.; Mou, H.; Wang, F.; Yao, M.; Zhao, S.; et al. A Therapeutic System Regulating Iron Metabolism in CD63 + Macrophage Subsets Activates Anti-Tumor Immunity for Bone Metastasis Therapy. ACS Nano 2025, 19, 36544–36565. [Google Scholar] [CrossRef] [Scilit]
- Zhang, Y.; Hu, K.; Shang, Z.; Yang, X.; Cao, L. Ferroptosis: Regulatory Mechanisms and Potential Targets for Bone Metabolism: A Review. Medicine 2024, 103, e39158. [Google Scholar] [CrossRef] [Scilit]
- Xiao, R.; Han, Z.; Jia, P.; Li, P.; Gong, M.; Cai, Y.; Pang, L.; Ye, X.; Jin, S. Ferroptosis and Bone Health: Bridging the Gap between Mechanisms and Therapy. Front. Immunol. 2025, 16, 1634516. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Guo, F.; Zong, S.; Zhang, X.; Ren, Z.; Shao, H.; Li, J.; Wang, X.; Li, Y.; Wang, X.; Chen, K. Ferroptosis and Metastasis: Molecular Checkpoints, Microenvironmental Dynamics, and Therapeutic Opportunities. Mol. Cancer 2026, 25, 45. [Google Scholar] [CrossRef] [Scilit]
- Jia, Y.; Li, R.; Li, Y.; Kachler, K.; Meng, X.; Gießl, A.; Qin, Y.; Zhang, F.; Liu, N.; Andreev, D.; et al. Melanoma Bone Metastasis-Induced Osteocyte Ferroptosis via the HIF1α-HMOX1 Axis. Bone Res. 2025, 13, 9. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Motafeghi, F.; Ramezani Tehrani, F.; Ghassemi Barghi, N. The Iron–Ferroptosis Axis in Bone Homeostasis: A Potential Complementary Pathway for Osteoporosis in Endometriosis. Eur. J. Med. Res. 2026, 31, 372. [Google Scholar] [CrossRef] [Scilit]
- Bu, X.; Wang, L. Iron Metabolism and the Tumor Microenvironment: A New Perspective on Cancer Intervention and Therapy (Review). Int. J. Mol. Med. 2024, 55, 39. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Han, Y.; Sarkar, H.; Xu, Z.; Lopez-Darwin, S.; Wei, Y.; Hang, X.; Liu, F.; Tran, K.; Wang, W.; Miller, J.M.; et al. Niche Macrophages Recycle Iron to Tumor Cells and Foster Erythroblast Mimicry to Promote Bone Metastasis and Anemia. bioRxiv 2025. [Google Scholar] [CrossRef] [Scilit]
- Rao, Y.; Liu, S.; Ma, A.; Xu, L.; Guo, J.; Sun, Z. Ferroptosis Modulates Invasion and Migration in Prostate Cancer PC-3M Subclones. Exp. Cell Res. 2026, 454, 114847. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Dike, P.E.; Campbell, T.; Odero-Marah, V. Abstract PR002: Ferroptosis Inducers Can Antagonize Prostate Cancer-Bone Interactions. Cancer Epidemiol. Biomark. Prev. 2023, 32, PR002. [Google Scholar] [CrossRef] [Scilit]
- Cao, P.H.A.; Dominic, A.; Lujan, F.E.; Senthilkumar, S.; Bhattacharya, P.K.; Frigo, D.E.; Subramani, E. Unlocking Ferroptosis in Prostate Cancer — the Road to Novel Therapies and Imaging Markers. Nat. Rev. Urol. 2024, 21, 615–637. [Google Scholar] [CrossRef] [Scilit]
- Rao, Y.; Pan, Q.; Liu, S.; Yao, S.; Li, L.; Yan, J.; Chen, L.; Xu, L.; Yan, H.; Ma, A.; et al. Tissue Inhibitor of Metalloproteinase 1 Promotes Ferroptosis and Suppresses Prostate Cancer Metastasis. J. Biol. Chem. 2025, 301, 108473. [Google Scholar] [CrossRef] [Scilit]
- Liu, X.; Zhang, Y.; Wu, X.; Xu, F.; Ma, H.; Wu, M.; Xia, Y. Targeting Ferroptosis Pathway to Combat Therapy Resistance and Metastasis of Cancer. Front. Pharmacol. 2022, 13, 909821. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wu, X.; Shen, S.; Qin, J.; Fei, W.; Fan, F.; Gu, J.; Shen, T.; Zhang, T.; Cheng, X. High Co-expression of SLC7A11 and GPX4 as a Predictor of Platinum Resistance and Poor Prognosis in Patients with Epithelial Ovarian Cancer. BJOG 2022, 129, 40–49. [Google Scholar] [CrossRef] [Scilit]
- WEI, J.; ZHU, L. The Role of Glutathione Peroxidase 4 in the Progression, Drug Resistance, and Targeted Therapy of Non-Small Cell Lung Cancer. Oncol. Res. 2025, 33, 863–872. [Google Scholar] [CrossRef] [Scilit]
- Jiang, X.; Yu, M.; Wang, W.; Zhu, L.; Wang, X.; Jin, H.; Feng, L. The Regulation and Function of Nrf2 Signaling in Ferroptosis-Activated Cancer Therapy. Acta Pharmacol. Sin. 2024, 45, 2229–2240. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lee, J.; Seo, Y.; Roh, J.-L. Ferroptosis and Nrf2 Signaling in Head and Neck Cancer: Resistance Mechanisms and Therapeutic Prospects. Antioxidants 2025, 14, 993. [Google Scholar] [CrossRef] [Scilit]
- Lin, L.; Wang, J.; Sheng, S.; Shen, Y.; Liu, X.; Xu, R.; Li, Y. Corosolic Acid Increases the Therapeutic Effect of Cisplatin on Gastric Cancer by Regulating Gpx4-Dependent Ferroptosis. Cancer Drug Resist. 2025, 8, 40. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lu, J.; Cai, D.; Qian, L.; Wang, Y.; Ai, S.; Song, P.; Sun, F.; Sun, Y.; Liang, M.; Jiang, H.; et al. Targeting SIX2 as a Novel Sensitization Strategy of Sorafenib Treatment on Advanced Hepatocellular Carcinoma through Modulating METTL9-SLC7A11 Axis. NPJ Precis. Oncol. 2025, 9, 186. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- He, J.; Li, M.; Bao, J.; Peng, Y.; Xue, W.; Chen, J.; Zhao, J. β-Elemene Promotes Ferroptosis and Reverses Radioresistance in Gastric Cancer by Inhibiting the OTUB1-GPX4 Interaction. Front. Pharmacol. 2024, 15, 1469180. [Google Scholar] [CrossRef] [Scilit]
- Chen, P.; Li, X.; Zhang, R.; Liu, S.; Xiang, Y.; Zhang, M.; Chen, X.; Pan, T.; Yan, L.; Feng, J.; et al. Combinative Treatment of β-Elemene and Cetuximab Is Sensitive to KRAS Mutant Colorectal Cancer Cells by Inducing Ferroptosis and Inhibiting Epithelial-Mesenchymal Transformation. Theranostics 2020, 10, 5107–5119. [Google Scholar] [CrossRef] [Scilit]
- Yue, W.; Yupeng, G.; Jun, C.; Kui, J. Apatinib Combined with Olaparib Induces Ferroptosis via a P53-Dependent Manner in Ovarian Cancer. J. Cancer Res. Clin. Oncol. 2023, 149, 8681–8689. [Google Scholar] [CrossRef] [Scilit]
- Teng, K.; Ma, H.; Gai, P.; Zhao, X.; Qi, G. SPHK1 Enhances Olaparib Resistance in Ovarian Cancer through the NFκB/NRF2/Ferroptosis Pathway. Cell Death Discov. 2025, 11, 29. [Google Scholar] [CrossRef] [Scilit]
- Hong, T.; Lei, G.; Chen, X.; Li, H.; Zhang, X.; Wu, N.; Zhao, Y.; Zhang, Y.; Wang, J. PARP Inhibition Promotes Ferroptosis via Repressing SLC7A11 and Synergizes with Ferroptosis Inducers in BRCA-Proficient Ovarian Cancer. Redox Biol. 2021, 42, 101928. [Google Scholar] [CrossRef] [Scilit]
- Wu, K.; Vaughan, A.J.; Bossowski, J.P.; Hao, Y.; Ziogou, A.; Kim, S.M.; Kim, T.H.; Nakamura, M.N.; Pillai, R.; Mancini, M.; et al. Targeting FSP1 Triggers Ferroptosis in Lung Cancer. Nature 2026, 649, 487–495. [Google Scholar] [CrossRef] [Scilit]
- Wu, Y.-C.; Huang, C.-S.; Hsieh, M.-S.; Huang, C.-M.; Setiawan, S.A.; Yeh, C.-T.; Kuo, K.-T.; Liu, S.-C. Targeting of FSP1 Regulates Iron Homeostasis in Drug-Tolerant Persister Head and Neck Cancer Cells via Lipid-Metabolism-Driven Ferroptosis. Aging 2024, 16, 627. [Google Scholar] [CrossRef] [Scilit]
- Tahsin, T.; McPhail, D.K.; Champion, J.D.; Alzahrani, M.A.M.; Hilditch, M.L.; Faris-Orr, A.; Calver, B.L.; Cronin, J.G.; Mareque-Rivas, J.C.; Sexton, D.W.; et al. Targeting NRF2 and FSP1 to Overcome Ferroptosis Resistance in TSC2-Deficient and Cancer Cells. Cancers 2025, 17, 2714. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lee, N.; Carlisle, A.E.; Peppers, A.; Park, S.J.; Doshi, M.B.; Spears, M.E.; Kim, D. XCT-Driven Expression of GPX4 Determines Sensitivity of Breast Cancer Cells to Ferroptosis Inducers. Antioxidants 2021, 10, 317. [Google Scholar] [CrossRef] [Scilit]
- Zhang, Y.; Lin, Y.; Cai, H.; Zhou, T. EZH2 Confers Lenvatinib Resistance in Hepatocellular Carcinoma by Suppressing ACSL1-Mediated Ferroptosis. BMC Cancer 2025, 25, 1638. [Google Scholar] [CrossRef] [Scilit]
- Tang, C.; He, C.; Wang, D.; Guo, J.; Yin, X.; Ye, H.; Wu, L.; Zhang, Y.; Zeng, S.; Zeng, X.; et al. Co-Delivery of Sorafenib and an FSP1 Inhibitor Triggers Dual Ferroptosis in Tumor Cells and Immunosuppressive Macrophages for Enhanced Immunotherapy in Mouse Models of Hepatocellular Carcinoma. Nat. Commun. 2025, 16, 10096. [Google Scholar] [CrossRef] [Scilit]
- Guo, L.; Hu, C.; Yao, M.; Han, G. Mechanism of Sorafenib Resistance Associated with Ferroptosis in HCC. Front. Pharmacol. 2023, 14, 1207496. [Google Scholar] [CrossRef] [Scilit]
- Brown, C.W.; Amante, J.J.; Chhoy, P.; Elaimy, A.L.; Liu, H.; Zhu, L.J.; Baer, C.E.; Dixon, S.J.; Mercurio, A.M. Prominin2 Drives Ferroptosis Resistance by Stimulating Iron Export. Dev. Cell 2019, 51, 575–586.e4. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Alvarez, S.W.; Sviderskiy, V.O.; Terzi, E.M.; Papagiannakopoulos, T.; Moreira, A.L.; Adams, S.; Sabatini, D.M.; Birsoy, K.; Possemato, R. NFS1 Undergoes Positive Selection in Lung Tumours and Protects Cells from Ferroptosis. Nature 2017, 551, 639–643, Erratum in Nature 2022, 609, E12. https://doi.org/10.1038/s41586-022-05323-7. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kim, E.H.; Shin, D.; Lee, J.; Jung, A.R.; Roh, J.-L. CISD2 Inhibition Overcomes Resistance to Sulfasalazine-Induced Ferroptotic Cell Death in Head and Neck Cancer. Cancer Lett. 2018, 432, 180–190. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Du, J.; Zhou, Y.; Li, Y.; Xia, J.; Chen, Y.; Chen, S.; Wang, X.; Sun, W.; Wang, T.; Ren, X.; et al. Identification of Frataxin as a Regulator of Ferroptosis. Redox Biol. 2020, 32, 101483, Erratum in Redox Biol. 2023, 65, 102815. https://doi.org/10.1016/j.redox.2023.102815. [Google Scholar] [CrossRef] [Scilit]
- Loftus, L.V.; Rolle, L.T.A.; Wang, B.; Pienta, K.J.; Amend, S.R. Dysregulation of Labile Iron Predisposes Chemotherapy Resistant Cancer Cells to Ferroptosis. Int. J. Mol. Sci. 2025, 26, 4193. [Google Scholar] [CrossRef] [Scilit]
- Freitas-Cortez, M.A.; Masrorpour, F.; Jiang, H.; Mahmud, I.; Lu, Y.; Huang, A.; Duong, L.K.; Wang, Q.; Voss, T.A.; Kettlun Leyton, C.S.; et al. Cancer Cells Avoid Ferroptosis Induced by Immune Cells via Fatty Acid Binding Proteins. Mol. Cancer 2025, 24, 40. [Google Scholar] [CrossRef] [Scilit]
- Cruz-Gregorio, A.; Aranda-Rivera, A.K. Quercetin and Ferroptosis. Life 2023, 13, 1730. [Google Scholar] [CrossRef] [Scilit]
- Tang, X.; Ding, H.; Liang, M.; Chen, X.; Yan, Y.; Wan, N.; Chen, Q.; Zhang, J.; Cao, J. Curcumin Induces Ferroptosis in Non-small-cell Lung Cancer via Activating Autophagy. Thorac. Cancer 2021, 12, 1219–1230, Erratum in Thorac. Cancer 2024, 15, 1197. https://doi.org/10.1111/1759-7714.15298. [Google Scholar] [CrossRef] [Scilit]
- Subhalakshmi, K.; Veeraraghavan, V.P.; Sivagnanam, A.; Thangasamy, B.; Francis, A.P. Glucose-Capped Fisetin Silver Nanoparticles Induced Cytotoxicity and Ferroptosis in Breast Cancer Cells: A Molecular Perspective. Inorg. Chem. Commun. 2024, 169, 113004. [Google Scholar] [CrossRef] [Scilit]
- Wang, X.; Xu, S.; Zhang, L.; Cheng, X.; Yu, H.; Bao, J.; Lu, R. Vitamin C Induces Ferroptosis in Anaplastic Thyroid Cancer Cells by Ferritinophagy Activation. Biochem. Biophys. Res. Commun. 2021, 551, 46–53. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wu, K.; Liu, L.; Wu, Z.; Huang, Q.; Zhou, L.; Xie, R.; Wang, M. Ascorbic Acid Induces Ferroptosis via STAT3/GPX4 Signaling in Oropharyngeal Cancer. Free Radic. Res. 2024, 58, 117–129. [Google Scholar] [CrossRef] [Scilit]
- Zhou, Q.; Meng, Y.; Li, D.; Yao, L.; Le, J.; Liu, Y.; Sun, Y.; Zeng, F.; Chen, X.; Deng, G. Ferroptosis in Cancer: From Molecular Mechanisms to Therapeutic Strategies. Signal Transduct. Target. Ther. 2024, 9, 55. [Google Scholar] [CrossRef] [Scilit]
- Zou, J.; Wang, L.; Tang, H.; Liu, X.; Peng, F.; Peng, C. Ferroptosis in Non-Small Cell Lung Cancer: Progression and Therapeutic Potential on It. Int. J. Mol. Sci. 2021, 22, 13335. [Google Scholar] [CrossRef] [Scilit]
- Wang, Z.; Yao, X.; Wang, K.; Wang, B. TFR1-Mediated Iron Metabolism Orchestrates Tumor Ferroptosis and Immunity in Non-Small Cell Lung Cancer. J. Environ. Pathol. Toxicol. Oncol. 2024, 43, 1–12. [Google Scholar] [CrossRef] [Scilit]
- Kim, S.; Jin, H.-O.; Jang, S.-K.; Ahn, S.H.; Kim, G.; Kim, H.; Lee, T.-G.; Kim, C.H.; Park, I.-C. Iron Overload Enhances the Susceptibility to Cysteine Deprivation-Induced Ferroptosis in Non-Small Cell Lung Cancer Cells. Med. Oncol. 2025, 42, 201. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cai, S.; Ding, Z.; Liu, X.; Zeng, J. Trabectedin Induces Ferroptosis via Regulation of HIF-1α/IRP1/TFR1 and Keap1/Nrf2/GPX4 Axis in Non-Small Cell Lung Cancer Cells. Chem. Biol. Interact. 2023, 369, 110262. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lei, Y.; Jiang, S.; Kong, C.; Pang, P.; Shan, H. Ferroptosis: Therapeutic Potential and Strategies in Non-Small Cell Lung Cancer. Biology 2025, 14, 545. [Google Scholar] [CrossRef] [Scilit]
- Zhao, H.; Ao, L.; Sorina; Wei, Y.; Yin, H.Z.; Zhang, N.; Lee, X.Q.; Du, F.L.; Zhou, G.L. Ferroptosis and Gastric Cancer: From Molecular Mechanisms to Clinical Implications. Front. Immunol. 2025, 16, 1581928. [Google Scholar] [CrossRef] [Scilit]
- Fu, D.; Wang, C.; Yu, L.; Yu, R. Induction of Ferroptosis by ATF3 Elevation Alleviates Cisplatin Resistance in Gastric Cancer by Restraining Nrf2/Keap1/XCT Signaling. Cell. Mol. Biol. Lett. 2021, 26, 26. [Google Scholar] [CrossRef] [Scilit]
- Wang, L.; Wang, H. The Putative Role of Ferroptosis in Gastric Cancer: A Review. Eur. J. Cancer Prev. 2023, 32, 575–583. [Google Scholar] [CrossRef] [Scilit]
- Ma, Y. Targeting Ferroptosis and Immune Surveillance in Gastric Cancer with Traditional Chinese Medicine Monomers: A Dual-Targeted Strategy for Epithelial-Mesenchymal Transition and Angiogenesis. Am. J. Cancer Res. 2025, 15, 3617–3631. [Google Scholar] [CrossRef] [Scilit]
- Liu, S.; Yue, M.; Lu, Y.; Wang, Y.; Luo, S.; Liu, X.; Jiang, J. Advancing the Frontiers of Colorectal Cancer Treatment: Harnessing Ferroptosis Regulation. Apoptosis 2024, 29, 86–102. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tian, X.; Li, S.; Ge, G. Apatinib Promotes Ferroptosis in Colorectal Cancer Cells by Targeting ELOVL6/ACSL4 Signaling. Cancer Manag. Res. 2021, 13, 1333–1342. [Google Scholar] [CrossRef] [Scilit]
- Wang, W.; Yan, S.; Ma, M.; Chen, T.; Liu, C.; Liang, W.; Zhao, X.; Zhao, K.; Xue, J.; Yu, H.; et al. Andrographolide Induces Ferroptosis in Colorectal Cancer via P53-Mediated Downregulation of the SLC7A11/GPX4 Signaling Pathway. Phytomedicine 2025, 148, 157470. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Qiao, Y.; Su, M.; Zhao, H.; Liu, H.; Wang, C.; Dai, X.; Liu, L.; Liu, G.; Sun, H.; Sun, M.; et al. Targeting FTO Induces Colorectal Cancer Ferroptotic Cell Death by Decreasing SLC7A11/GPX4 Expression. J. Exp. Clin. Cancer Res. 2024, 43, 108, Erratum in J. Exp. Clin. Cancer Res. 2024, 43, 131. https://doi.org/10.1186/s13046-024-03051-6. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ou, Y.; Wu, N.; Shu, L.; Zhao, Y.; Bao, Y.; Wu, Q. The High Expression of SLC7A11 and GPX4 Are Significantly Correlated with β-Catenin in Colorectal Cancer. Cancer Manag. Res. 2024, 16, 1639–1648. [Google Scholar] [CrossRef] [Scilit]
- Singh, S.; Mohapatra, I.; Barik, D.; Zheng, H.; Kim, S.; Sharma, M.; Chen, C.C.; Singh, G. Harnessing Ferroptosis to Transform Glioblastoma Therapy and Surmount Treatment Resistance. Cell Death Discov. 2025, 11, 448. [Google Scholar] [CrossRef] [Scilit]
- Li, X.; Zhang, W.; Xing, Z.; Hu, S.; Zhang, G.; Wang, T.; Wang, T.; Fan, Q.; Chen, G.; Cheng, J.; et al. Targeting SIRT3 Sensitizes Glioblastoma to Ferroptosis by Promoting Mitophagy and Inhibiting SLC7A11. Cell Death Dis. 2024, 15, 168. [Google Scholar] [CrossRef] [Scilit]
- Cai, J.; Ye, Z.; Hu, Y.; Ye, L.; Gao, L.; Wang, Y.; Sun, Q.; Tong, S.; Zhang, S.; Wu, L.; et al. Fatostatin Induces Ferroptosis through Inhibition of the AKT/MTORC1/GPX4 Signaling Pathway in Glioblastoma. Cell Death Dis. 2023, 14, 211. [Google Scholar] [CrossRef] [Scilit]
- Sun, Q.; Lu, H.; Yuan, F.; Zhao, Q.; Wei, Y.; Wang, R.; Chen, Q.; Liu, B. SLC10A3 Regulates Ferroptosis of Glioblastoma through the STAT3/GPX4 Pathway. Sci. Rep. 2025, 15, 21259. [Google Scholar] [CrossRef] [Scilit]
- Sui, S.; Xu, S.; Pang, D. Emerging Role of Ferroptosis in Breast Cancer: New Dawn for Overcoming Tumor Progression. Pharmacol. Ther. 2022, 232, 107992. [Google Scholar] [CrossRef] [Scilit]
- Puente-Cobacho, B.; Esteo, C.; Altea-Manzano, P.; Garcia-Perez, J.L.; Quiles, J.L.; Sanchez-Rovira, P.; Martín-Salvago, M.D.; Molina-Jiménez, L.; Luque, R.J.; Fendt, S.-M.; et al. De Novo Lipogenesis Protects Dormant Breast Cancer Cells from Ferroptosis and Promotes Metastasis. Redox Biol. 2025, 80, 103480. [Google Scholar] [CrossRef] [Scilit]
- Balihodzic, A.; Prinz, F.; Dengler, M.A.; Calin, G.A.; Jost, P.J.; Pichler, M. Non-Coding RNAs and Ferroptosis: Potential Implications for Cancer Therapy. Cell Death Differ. 2022, 29, 1094–1106. [Google Scholar] [CrossRef] [Scilit]
- Xie, Y.; Wang, B.; Zhao, Y.; Tao, Z.; Wang, Y.; Chen, G.; Hu, X. Mammary Adipocytes Protect Triple-Negative Breast Cancer Cells from Ferroptosis. J. Hematol. Oncol. 2022, 15, 72. [Google Scholar] [CrossRef] [Scilit]
- Tan, S.; Sun, X.; Dong, H.; Wang, M.; Yao, L.; Wang, M.; Xu, L.; Xu, Y. ACSL3 Regulates Breast Cancer Progression via Lipid Metabolism Reprogramming and the YES1/YAP Axis. Cancer Biol. Med. 2024, 21, 606–635. [Google Scholar] [CrossRef] [Scilit]
- Lyu, H.; Kong, J.; Chen, J.; Zhang, R.; Xiao, S.; Guo, D.; Zhang, Q.; Chen, X.-Z.; Tang, J.; Zhou, C. The Emerging Scenario of Ferroptosis in Pancreatic Cancer Tumorigenesis and Treatment. Int. J. Mol. Sci. 2024, 25, 13334. [Google Scholar] [CrossRef] [Scilit]
- Ruiz, C.F.; Ge, X.; McDonnell, R.; Agabiti, S.S.; McQuaid, D.C.; Tang, A.; Kharwa, M.; Goodell, J.; Saavedra-Peña, R.d.M.; Wing, A.; et al. Diet-Induced Phospholipid Remodeling Dictates Ferroptosis Sensitivity and Tumorigenesis in the Pancreas. bioRxiv 2025. [Google Scholar] [CrossRef] [Scilit]
- Suda, A.; Umaru, B.A.; Yamamoto, Y.; Shima, H.; Saiki, Y.; Pan, Y.; Jin, L.; Sun, J.; Low, Y.L.C.; Suzuki, C.; et al. Polyunsaturated Fatty Acids-Induced Ferroptosis Suppresses Pancreatic Cancer Growth. Sci. Rep. 2024, 14, 4409. [Google Scholar] [CrossRef] [Scilit]
- Sokol, K.H.; Lee, C.J.; Rogers, T.J.; Waldhart, A.; Ellis, A.E.; Madireddy, S.; Daniels, S.R.; House, R.J.; Ye, X.; Olesnavich, M.; et al. Lipid Availability Influences Ferroptosis Sensitivity in Cancer Cells by Regulating Polyunsaturated Fatty Acid Trafficking. Cell Chem. Biol. 2025, 32, 408–422.e6. [Google Scholar] [CrossRef] [Scilit]
- Zhang, Z.; Cai, X.; Gong, Y.; Gong, A.; Liao, X.; Gao, J.; Wang, D. SREBP1-SCD1 Enhanced MUFAs Biosynthesis Drives Nutrient Deprived Pancreatic Cancer Cell Ferroptosis Resistance. J. Cancer 2025, 16, 3960–3971. [Google Scholar] [CrossRef] [Scilit]
- Guo, K.; Lu, M.; Bi, J.; Yao, T.; Gao, J.; Ren, F.; Zhu, L. Ferroptosis: Mechanism, Immunotherapy and Role in Ovarian Cancer. Front. Immunol. 2024, 15, 1410018. [Google Scholar] [CrossRef] [Scilit]
- Xie, X.; Chen, C.; Wang, C.; Guo, Y.; Sun, B.; Tian, J.; Yan, J.; Li, D.; Chen, G. Targeting GPX4-Mediated Ferroptosis Protection Sensitizes BRCA1-Deficient Cancer Cells to PARP Inhibitors. Redox Biol. 2024, 76, 103350. [Google Scholar] [CrossRef] [Scilit]
- Ajoolabady, A.; Tang, D.; Kroemer, G.; Ren, J. Ferroptosis in Hepatocellular Carcinoma: Mechanisms and Targeted Therapy. Br. J. Cancer 2023, 128, 190–205. [Google Scholar] [CrossRef] [Scilit]
- Liu, M.; Shi, C.; Song, Q.; Kang, M.; Jiang, X.; Liu, H.; Pei, D. Sorafenib Induces Ferroptosis by Promoting TRIM54-Mediated FSP1 Ubiquitination and Degradation in Hepatocellular Carcinoma. Hepatol. Commun. 2023, 7, e0246. [Google Scholar] [CrossRef] [Scilit]
- Cheu, J.W.-S.; Lee, D.; Li, Q.; Goh, C.C.; Bao, M.H.-R.; Yuen, V.W.-H.; Zhang, M.S.; Yang, C.; Chan, C.Y.-K.; Tse, A.P.-W.; et al. Ferroptosis Suppressor Protein 1 Inhibition Promotes Tumor Ferroptosis and Anti-Tumor Immune Responses in Liver Cancer. Cell. Mol. Gastroenterol. Hepatol. 2023, 16, 133–159. [Google Scholar] [CrossRef] [Scilit]
- Jiang, Y.; Yu, Y.; Pan, Z.; Wang, Z.; Sun, M. Ginsenoside RK1 Induces Ferroptosis in Hepatocellular Carcinoma Cells through an FSP1-Dependent Pathway. Pharmaceuticals 2024, 17, 871. [Google Scholar] [CrossRef] [Scilit]
- Gao, R.; Kalathur, R.K.R.; Coto-Llerena, M.; Ercan, C.; Buechel, D.; Shuang, S.; Piscuoglio, S.; Dill, M.T.; Camargo, F.D.; Christofori, G.; et al. YAP/TAZ and ATF4 Drive Resistance to Sorafenib in Hepatocellular Carcinoma by Preventing Ferroptosis. EMBO Mol. Med. 2021, 13, e14351. [Google Scholar] [CrossRef] [Scilit]
- Meng, Y.; Zhou, Q.; Dian, Y.; Zeng, F.; Deng, G.; Chen, X. Ferroptosis: A Targetable Vulnerability for Melanoma Treatment. J. Investig. Dermatol. 2025, 145, 1323–1344. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, X.; Zhang, M.; Zhang, Z.; Zhou, S. Salidroside Induces Mitochondrial Dysfunction and Ferroptosis to Inhibit Melanoma Progression through Reactive Oxygen Species Production. Exp. Cell Res. 2024, 438, 114034. [Google Scholar] [CrossRef] [Scilit]
- Motamedi, S.; Ravoet, N.; Dehairs, J.; Vanderhoydonc, F.; Escamilla-Ayala, A.; Sliwinska, M.A.; Wang, S.; Idkowiak, J.; Soenen, S.; Agostinis, P.; et al. AMP-Activated Protein Kinase-Driven Lipid Droplet Dynamics Govern Melanoma Sensitivity to Polyunsaturated Fatty Acid and Iron-Induced Ferroptosis. Nat. Commun. 2025, 16, 11252. [Google Scholar] [CrossRef] [Scilit]
- Zhou, Q.; Dian, Y.; He, Y.; Yao, L.; Su, H.; Meng, Y.; Sun, Y.; Li, D.; Xiong, Y.; Zeng, F.; et al. Propafenone Facilitates Mitochondrial-Associated Ferroptosis and Synergizes with Immunotherapy in Melanoma. J. Immunother. Cancer 2024, 12, e009805. [Google Scholar] [CrossRef] [Scilit]
- Mynott, R.L.; Habib, A.; Best, O.G.; Wallington-Gates, C.T. Ferroptosis in Haematological Malignancies and Associated Therapeutic Nanotechnologies. Int. J. Mol. Sci. 2023, 24, 7661. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ashoub, M.H.; Razavi, R.; Heydaryan, K.; Salavati-Niasari, M.; Amiri, M. Targeting Ferroptosis for Leukemia Therapy: Exploring Novel Strategies from Its Mechanisms and Role in Leukemia Based on Nanotechnology. Eur. J. Med. Res. 2024, 29, 224. [Google Scholar] [CrossRef] [Scilit]
- Reikvam, H.; Rolfsnes, M.G.; Rolsdorph, L.; Sandnes, M.; Selheim, F.; Hernandez-Valladares, M.; Bruserud, Ø. Ferritin in Acute Myeloid Leukemia: Not Only a Marker of Inflammation and Iron Overload, but Also a Regulator of Cellular Iron Metabolism, Signaling and Communication. Int. J. Mol. Sci. 2025, 26, 5744. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yu, Y.; Xie, Y.; Cao, L.; Yang, L.; Yang, M.; Lotze, M.T.; Zeh, H.J.; Kang, R.; Tang, D. The Ferroptosis Inducer Erastin Enhances Sensitivity of Acute Myeloid Leukemia Cells to Chemotherapeutic Agents. Mol. Cell. Oncol. 2015, 2, e1054549. [Google Scholar] [CrossRef] [Scilit]
- Cao, J.Y.; Dixon, S.J. Mechanisms of Ferroptosis. Cell. Mol. Life Sci. 2016, 73, 2195–2209. [Google Scholar] [CrossRef] [Scilit]
- Gao, W.; Wang, X.; Zhou, Y.; Wang, X.; Yu, Y. Autophagy, Ferroptosis, Pyroptosis, and Necroptosis in Tumor Immunotherapy. Signal Transduct. Target. Ther. 2022, 7, 196. [Google Scholar] [CrossRef] [Scilit]
- Leftin, A.; Ben-Chetrit, N.; Joyce, J.A.; Koutcher, J.A. Imaging Endogenous Macrophage Iron Deposits Reveals a Metabolic Biomarker of Polarized Tumor Macrophage Infiltration and Response to CSF1R Breast Cancer Immunotherapy. Sci. Rep. 2019, 9, 857. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Simões, R.V.; Veeraperumal, S.; Serganova, I.S.; Kruchevsky, N.; Varshavsky, J.; Blasberg, R.G.; Ackerstaff, E.; Koutcher, J.A. Inhibition of Prostate Cancer Proliferation by Deferiprone. NMR Biomed. 2017, 30, e3712. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Leftin, A.; Ben-Chetrit, N.; Klemm, F.; Joyce, J.A.; Koutcher, J.A. Iron Imaging Reveals Tumor and Metastasis Macrophage Hemosiderin Deposits in Breast Cancer. PLoS ONE 2017, 12, e0184765. [Google Scholar] [CrossRef] [Scilit]
- Mertens, C.; Akam, E.A.; Rehwald, C.; Brüne, B.; Tomat, E.; Jung, M. Intracellular Iron Chelation Modulates the Macrophage Iron Phenotype with Consequences on Tumor Progression. PLoS ONE 2016, 11, e0166164. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Vreugdenhil, G.; Kontoghiorghes, G.J.; Van Eijk, H.G.; Swaak, A.J. Impaired Erythropoietin Responsiveness to the Anaemia in Rheumatoid Arthritis. A Possible Inverse Relationship with Iron Stores and Effects of the Oral Iron Chelator 1,2-Dimethyl-3-Hydroxypyrid-4-One. Clin. Exp. Rheumatol. 1991, 9, 35–40. [Google Scholar]
- Vreugdenhil, G.; Swaak, A.J.G.; Kontoghiorghes, G.J.; Van Eijk, H.G. Efficacy and Safety of Oral Iron Chelator L1 in Anaemic Rheumatoid Arthritis Patients. Lancet 1989, 334, 1398–1399. [Google Scholar] [CrossRef] [Scilit]
- Brock, J.H.; Licéaga, J.; Arthur, H.M.L.; Kontoghiorghes, G.J. Effect of Novel 1-alkyl-3-hydroxy-2-methylpyrid-4-one Chelators on Uptake and Release of Iron from Macrophages. Am. J. Hematol. 1990, 34, 21–25. [Google Scholar] [CrossRef] [Scilit]
- Kolnagou, A.; Kleanthous, M.; Kontoghiorghes, G.J. Reduction of Body Iron Stores to Normal Range Levels in Thalassaemia by Using a Deferiprone/Deferoxamine Combination and Their Maintenance Thereafter by Deferiprone Monotherapy. Eur. J. Haematol. 2010, 85, 430–438. [Google Scholar] [CrossRef] [Scilit]
- Farmaki, K.; Tzoumari, I.; Pappa, C.; Chouliaras, G.; Berdoukas, V. Normalisation of Total Body Iron Load with Very Intensive Combined Chelation Reverses Cardiac and Endocrine Complications of Thalassaemia Major. Br. J. Haematol. 2010, 148, 466–475. [Google Scholar] [CrossRef] [Scilit]
- Kolnagou, A.; Kontoghiorghe, C.; Kontoghiorghes, G. Prevention of Iron Overload and Long Term Maintenance of Normal Iron Stores in Thalassaemia Major Patients Using Deferiprone or Deferiprone Deferoxamine Combination. Drug Res. 2017, 67, 404–411. [Google Scholar] [CrossRef] [Scilit]
- Rajapurkar, M.M.; Hegde, U.; Bhattacharya, A.; Alam, M.G.; Shah, S.V. Effect of Deferiprone, an Oral Iron Chelator, in Diabetic and Non-Diabetic Glomerular Disease. Toxicol. Mech. Methods 2013, 23, 5–10. [Google Scholar] [CrossRef] [Scilit]
- Saxena, D.; Spino, M.; Tricta, F.; Connelly, J.; Cracchiolo, B.M.; Hanauske, A.R.; D’Alliessi Gandolfi, D.; Mathews, M.B.; Karn, J.; Holland, B.; et al. Drug-Based Lead Discovery: The Novel Ablative Antiretroviral Profile of Deferiprone in HIV-1-Infected Cells and in HIV-Infected Treatment-Naive Subjects of a Double-Blind, Placebo-Controlled, Randomized Exploratory Trial. PLoS ONE 2016, 11, e0154842. [Google Scholar] [CrossRef] [Scilit]
- Mohanty, D.; Ghosh, K.; Pathare, A.V.; Karnad, D. Deferiprone (L1) as an Adjuvant Therapy for Plasmodium Falciparum Malaria. Indian J. Med. Res. 2002, 115, 17–21. [Google Scholar] [PubMed]
- Merkel, D.; Soffer, S.; Filanovsky, K.; Braester, A.; Fibach, E.; Dana, M.; Ofran, Y.; Greenbaum, U.; Nagler, A.; Amitai, I.; et al. The Effect of Oral Iron Chelator Deferiprone on Iron Overload and Oxidative Stress in Patients with Myelodysplastic Syndromes: A Study by the Israeli MDS Working Group. Acta Haematol. 2024, 147, 427–434. [Google Scholar] [CrossRef] [Scilit]
- Kontoghiorghes, G.J. Drug Selection and Posology, Optimal Therapies and Risk/Benefit Assessment in Medicine: The Paradigm of Iron-Chelating Drugs. Int. J. Mol. Sci. 2023, 24, 16749. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kontoghiorghes, G.J. Development of Iron-Chelating/Antioxidant Nutraceuticals and Natural Products as Pharmaceuticals for Clinical Use in Diseases with Free Radical Pathologies. Nutrients 2025, 17, 3270. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kontoghiorghes, G.J.; Kontoghiorghe, C.N. Efficacy and Safety of Iron-Chelation Therapy with Deferoxamine, Deferiprone, and Deferasirox for the Treatment of Iron-Loaded Patients with Non-Transfusion-Dependent Thalassemia Syndromes. Drug Des. Devel. Ther. 2016, 10, 465–481. [Google Scholar] [CrossRef] [Scilit]
- Kontoghiorghes, G.; Kontoghiorghe, C. Iron and Chelation in Biochemistry and Medicine: New Approaches to Controlling Iron Metabolism and Treating Related Diseases. Cells 2020, 9, 1456. [Google Scholar] [CrossRef] [Scilit]
- Mémin, E.; Hoque, M.; Jain, M.R.; Heller, D.S.; Li, H.; Cracchiolo, B.; Hanauske-Abel, H.M.; Pe’ery, T.; Mathews, M.B. Blocking EIF5A Modification in Cervical Cancer Cells Alters the Expression of Cancer-Related Genes and Suppresses Cell Proliferation. Cancer Res. 2014, 74, 552–562. [Google Scholar] [CrossRef] [Scilit]
- Newfield, R.S.; Walker, P.; Grady, R.W.; Hanauske-Abel, H.M. Deferiprone: An In Vitro Inhibitor of Protein Hydroxylases Vital for Matrix Formation and Cell Proliferation † 944. Pediatr. Res. 1996, 39, 160. [Google Scholar] [CrossRef] [Scilit]
- Khodaverdian, V.; Tapadar, S.; MacDonald, I.A.; Xu, Y.; Ho, P.-Y.; Bridges, A.; Rajpurohit, P.; Sanghani, B.A.; Fan, Y.; Thangaraju, M.; et al. Deferiprone: Pan-Selective Histone Lysine Demethylase Inhibition Activity and Structure Activity Relationship Study. Sci. Rep. 2019, 9, 4802. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fiorillo, M.; Tóth, F.; Brindisi, M.; Sotgia, F.; Lisanti, M.P. Deferiprone (DFP) Targets Cancer Stem Cell (CSC) Propagation by Inhibiting Mitochondrial Metabolism and Inducing ROS Production. Cells 2020, 9, 1529. [Google Scholar] [CrossRef] [Scilit]
- Mercado-Gómez, M.; Goikoetxea-Usandizaga, N.; Giné, A.E.; Merlos Rodrigo, M.A.; Afonso, M.B.; Azkargorta, M.; Zapata-Pavas, L.E.; Rejano-Gordillo, C.M.; Romero, M.R.; Mendizabal, I.; et al. Role of CNNM4 in the Progression of Cholangiocarcinoma: Implications for Ferroptosis and Therapeutic Potential. Gut 2026, 75, 341–352. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, Q.; Weina, P. Artesunate: The Best Drug in the Treatment of Severe and Complicated Malaria. Pharmaceuticals 2010, 3, 2322–2332. [Google Scholar] [CrossRef] [Scilit]
- Skeie, B.S.; Bragstad, S.; Sarowar, S.; Behbahani, M.; Filippi, C.; Knisely, J.; Schulder, M.; Goplen, D.; Eide, G.E.; Heggdal, J.I.; et al. CTNI-40. Phase I Trial of Sulfasalazine Combined with Stereotactic Radiosurgery for Recurrent Glioblastoma: Study Protocol For NCT04205357. Neuro-Oncology 2022, 24, vii80–vii81. [Google Scholar] [CrossRef] [Scilit]
- He, J.; Zhang, Y.; Luo, S.; Zhao, Z.; Mo, T.; Guan, H.; Li, H.; Bian, Z.; Zhang, X.; Qiu, S.; et al. Targeting SLC7A11 with Sorafenib Sensitizes Stereotactic Body Radiotherapy in Colorectal Cancer Liver Metastasis. Drug Resist. Updates 2025, 81, 101250. [Google Scholar] [CrossRef] [Scilit]
- Dai, D.; Chen, C.; Lu, C.; Guo, Y.; Li, Q.; Sun, C. Apoptosis, Autophagy, Ferroptosis, and Pyroptosis in Cisplatin-Induced Ototoxicity and Protective Agents. Front. Pharmacol. 2024, 15, 1430469. [Google Scholar] [CrossRef] [Scilit]
- Elmorsy, E.A.; Saber, S.; Hamad, R.S.; Abdel-Reheim, M.A.; El-kott, A.F.; AlShehri, M.A.; Morsy, K.; Salama, S.A.; Youssef, M.E. Advances in Understanding Cisplatin-Induced Toxicity: Molecular Mechanisms and Protective Strategies. Eur. J. Pharm. Sci. 2024, 203, 106939. [Google Scholar] [CrossRef] [Scilit]
- Bruedigam, C.; Porter, A.H.; Song, A.; Vroeg in de Wei, G.; Stoll, T.; Straube, J.; Cooper, L.; Cheng, G.; Kahl, V.F.S.; Sobinoff, A.P.; et al. Imetelstat-Mediated Alterations in Fatty Acid Metabolism to Induce Ferroptosis as a Therapeutic Strategy for Acute Myeloid Leukemia. Nat. Cancer 2023, 5, 47–65. [Google Scholar] [CrossRef] [Scilit]
- Maher, K.R.; Shafer, D.; Schaar, D.; Bandyopadhyay, D.; Deng, X.; Wright, J.; Piekarz, R.; Rudek, M.A.; Harvey, R.D.; Grant, S. A Phase I Study of MLN4924 and Belinostat in Relapsed/Refractory Acute Myeloid Leukemia or Myelodysplastic Syndrome. Cancer Chemother. Pharmacol. 2025, 95, 24. [Google Scholar] [CrossRef] [Scilit]
- Fan, Y.-Y.; Salinas, M.L.; Mullens, D.A.; Davidson, L.A.; Goldsby, J.S.; Ivanov, I.V.; Jayaraman, A.; Cai, J.J.; Levy, L.; Hullar, M.A.; et al. Pesco-Vegetarian Food Components Promote Colonocyte Ferroptosis in Preclinical Mouse Models and a Randomized Crossover Trial in Healthy Human Adults. J. Nutr. 2026, 156, 101287. [Google Scholar] [CrossRef] [Scilit]
- Ding, L.; Dang, S.; Sun, M.; Zhou, D.; Sun, Y.; Li, E.; Peng, S.; Li, J.; Li, G. Quercetin Induces Ferroptosis in Gastric Cancer Cells by Targeting SLC1A5 and Regulating the P-Camk2/p-DRP1 and NRF2/GPX4 Axes. Free Radic. Biol. Med. 2024, 213, 150–163. [Google Scholar] [CrossRef] [Scilit]
- Li, D.; Liu, X.; Pi, W.; Zhang, Y.; Yu, L.; Xu, C.; Sun, Z.; Jiang, J. Fisetin Attenuates Doxorubicin-Induced Cardiomyopathy In Vivo and In Vitro by Inhibiting Ferroptosis Through SIRT1/Nrf2 Signaling Pathway Activation. Front. Pharmacol. 2022, 12, 808480. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Monti, D.; Sotgia, F.; Whitaker-Menezes, D.; Tuluc, M.; Birbe, R.; Berger, A.; Lazar, M.; Cotzia, P.; Draganova-Tacheva, R.; Lin, Z.; et al. Pilot Study Demonstrating Metabolic and Anti-Proliferative Effects of in Vivo Anti-Oxidant Supplementation with N-Acetylcysteine in Breast Cancer. Semin. Oncol. 2017, 44, 226–232. [Google Scholar] [CrossRef] [Scilit]
- Zong, H.; Li, A.; Huang, Y.; Che, X.; Zhang, Y.; Ma, G.; Zhou, Z. Analysis of LncRNAs Profiles Associated with Ferroptosis Can Predict Prognosis and Immune Landscape and Drug Sensitivity in Patients with Clear Cell Renal Cell Carcinoma. J. Biochem. Mol. Toxicol. 2023, 37, e23464. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gao, C.; Kong, N.; Zhang, F.; Tang, T.; Li, J.; Ding, H.; Sun, Z.; Wu, L.; Xu, M. Risk Stratification of Lung Adenocarcinoma Using a Nomogram Combined with Ferroptosis-Related LncRNAs and Subgroup Analysis with Immune and N6-Methyladenosine Modification. BMC Med. Genom. 2022, 15, 15. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lian, J.; Zhang, C.; Lu, H. A Ferroptosis-Related LncRNA Signature Associated with Prognosis, Tumor Immune Environment, and Genome Instability in Hepatocellular Carcinoma. Comput. Math. Methods Med. 2022, 2022, 6284540. [Google Scholar] [CrossRef] [Scilit]





| Cancer Type | Key Mechanisms | Indicators/ Biomarkers | Therapeutic Consequences | Indicative References |
|---|---|---|---|---|
| Non-Small Cell Lung Cancer |
| TrR, ferritin, lipid peroxides | Most NSCLC cells show vulnerability to ferroptosis due to chronic oxidative stress and iron accumulation → potential target for ferroptosis-based therapy Some KRAS-driven tumours upregulate NRF2/GPX4 to gain resistance | [187,188,189,190,191] |
| Gastric Cancer |
| SLC7A11, GPX4, ROS, EMT markers | Gastric tumours use antioxidant pathways to stop ferroptosis → manipulating these pathways could enhance chemosensitivity | [107,192,193,194,195] |
| Colorectal Cancer |
| SLC7A11, GSH, ROS, GPX4 | CRC uses antioxidant defences and metabolic regulation to cause ferroptosis resistance → targeting SLC7A11/GPX4 may reverse chemoresistance | [196,197,198,199,200] |
| Glioblastoma |
| Lipid peroxides, GPX4 | Targeting iron and lipid ROS improves therapeutic response in GBM experimentally → ferroptosis induction explored as novel strategy | [201,202,203,204] |
| Breast Cancer |
| ACSL3, lipid profile, ROS | Breast cancers remodel lipids to evade ferroptosis → targeting lipid metabolism may overcome resistance | [205,206,207,208,209] |
| Pancreatic Cancer |
| Lipid composition ratios, ROS | PDAC often shows ferroptosis resistance due to altered lipid metabolism → targeting dietary/lipid pathways may experimentally impact drug response | [210,211,212,213,214] |
| Ovarian Cancer |
| SLC7A11, GPX4, ROS | Upregulation of SLC7A11/GPX4 antioxidant axis → chemoresistance Ferroptosis inducers enhance response to PARP inhibitors:
| [157,167,215,216] |
| Hepatocellular Carcinoma |
| ROS, NRF2, FSP1 | HCC uses antioxidant responses to deal with ferroptosis → modulating these defences can alter tumour growth | [217,218,219,220,221] |
| Melanoma |
| Lipid peroxides, ROS | Ferroptosis may limit melanoma progression under specific metabolic states Interplay with immune microenvironment is also being explored | [222,223,224,225] |
| Haematological Malignancies |
| LIP, TrR, SLC40A1, ferritin and its mediators, lipid peroxides, ROS, ACSL4 | Ferroptosis inducers can synergise with conventional chemotherapies to kill leukaemia or lymphoma cells that are otherwise resistant to apoptosis | [226,227,228,229] |
| Therapeutic Agent | Indicative Clinical Trials | Clinical Phase/Approval Status for Cancer | Tested Cancer Type | Relation to Ferroptosis | Mechanism Related to Ferroptosis |
|---|---|---|---|---|---|
| Ferroptosis-Related Agents | |||||
| Zalcitabine | NCT00000954 | I | AIDS-related Kaposi sarcoma | Mitochondrial DNA maintenance | Impairs mtDNA replication and repair → ↑ oxidative stress |
| Buthionine Sulfoximine | NCT00002730, NCT00005835 | I | Neuroblastoma | Glutathione synthesis inhibition | Blocks γ-GCS → ↓ GSH → ↓ GPX4 → ↑ lipid peroxidation |
| Altretamine | NCT00002936 | I | HIV-related lymphoma and sarcoma | GPX4 inhibition | Disrupts thiol/antioxidant systems (GPX4 inactivation) → ↑ oxidative stress |
| Cisplatin | NCT01656551, NCT04809103, NCT01097252, NCT03880396, NCT00463788, NCT03275857 | Marketed | NSCLC, cervical cancer, squamous cell carcinoma of the head and neck, breast cancer, prostate cancer, etc. | GSH depletion/GPX inactivation | ↓ intracellular GSH → ↓ GPX activity |
| Sorafenib | NCT03794440, NCT03247088, NCT02559778, NCT00064350 | Marketed | HCC, AML, NSCLC, neuroblastoma | System Xc− inhibition | Inhibits system Xc− → ↓ cystine → ↓ GSH → ↑ oxidative stress sensitises cells to ferroptosis |
| Sulfasalazine | NCT01577966, NCT04205357, NCT01198145, NCT03847311, NCT05664464, NCT06134388 | I, II, III | Glioma, glioblastoma, breast cancer, colorectal cancer, other solid tumours | System Xc− inhibition | Inhibits system Xc− → ↓ cystine → ↓ GSH → ↑ oxidative stress sensitises cells to ferroptosis |
| Lamivudine | NCT03144804, NCT00041327 | II | Colorectal cancer, T cell leukemia/lymphoma | SOD1 increase | Activates PGK1 and SOD1 → ↑ antioxidant defences → ↓ lipid peroxidation → ↓ ferroptosis |
| Temozolomide | NCT00626990, NCT00005597, NCT00740636, NCT00576680 | Marketed | Glioma, gastrointestinal tumours, lung cancer, pancreatic cancer | NRF2 / stress response modulation | Induces system Xc− via NRF2/ATF4 pathways |
| Fluvastatin | NCT00416403, NCT01992042, NCT02115074, NCT06679036 | I, II | Breast cancer, prostate cancer, glioma | Mevalonate pathway inhibition | Blocks mevalonate pathway → ↓ isoprenoids → ↓ GPX4/system Xc− → altered lipid peroxide handling |
| Simvastatin | NCT00354640, NCT00281476, NCT03086291, NCT02026583, NCT01099085, NCT04457089, NCT00313859, NCT00944463 | I, II, III | Breast cancer, multiple myeloma, colorectal cancer, gastric cancer, ovarian cancer, pancreatic cancer | Mevalonate pathway inhibition | Blocks mevalonate pathway → ↓ isoprenoids → ↓ GPX4/system Xc− → altered lipid peroxide handling |
| Artesunate | NCT03792516, NCT02353026, NCT02354534, NCT03100045, NCT00764036, NCT06165614 | I | Breast cancer, vulvar intraepithelial neoplasia, cervical intraepithelial neoplasia, anal intraepithelial neoplasia, advanced solid tumours | Iron-dependent ROS amplification | ↑ Fe2+ and ROS, ↓ GPX4/GSH, disrupts iron regulation → ↑ lipid peroxidation |
| CNSI-Fe(II) (carbon nanoparticle-loaded iron) | NCT06048367, NCT07433283 | I, II | Advanced solid tumours | Targeted iron load | ↑ intratumoural iron → ↑ labile Fe2+ → lipid peroxidation → ferroptosis |
| Neratinib | NCT03457896, NCT00300781, NCT01827267, NCT00266877 | Marketed | Colorectal cancer, breast cancer, NSCLC | Iron modulation, system Xc− inhibition | Disrupts iron homeostasis, inhibits system Xc− → ↓ cystine → ↓ GSH → ↑ oxidative stress sensitises cells to ferroptosis |
| Lapatinib | NCT00536809, NCT00574171, NCT01184482, NCT04831528, NCT03418558 | Marketed | Colorectal cancer, breast cancer, advanced solid tumours | Iron modulation, GPX4 downregulation | ↑ intracellular iron and ROS, ↓ GPX4 expression → ↑ lipid peroxidation → ferroptosis |
| Therapeutic Agent | Indicative Clinical Trials | Clinical Phase/Approval Status for Cancer | Tested Cancer Type | Relation to Ferroptosis | Mechanism Related to Ferroptosis |
|---|---|---|---|---|---|
| Iron-Chelating Agents | |||||
| Deferoxamine | NCT05300958, NCT05184816 | I, II | Metastatic TNBC, leptomeningeal metastases from solid tumours | Iron chelation | Binds free iron → altered iron homeostasis and lipid peroxidation for ferroptosis |
| Deferasirox | NCT02413021, NCT02341495, UMIN000013451 | I, II | AML, ALL, HCC | Iron chelation | Binds free iron → ↓ iron availability for lipid peroxidation in ferroptosis |
| Deferiprone | NCT02477631, Other clinical trial examples in [245,246] | Pilot, ΙΙ | Myelodysplastic syndrome | Iron chelation | Binds free iron → ↓ iron availability for lipid peroxidation in ferroptosis |
| N-acetylcysteine | NCT04982146, NCT05123365, clinical trial in [265] | Pilot, I, II | Breast cancer, pseudomyxoma peritonei, myeloproliferative neoplasms | Iron chelation | Binds free iron → ↓ iron availability for lipid peroxidation in ferroptosis, increases intracellular GSH |
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Kourti, M.; Kontoghiorghes, G.J. Linking Iron Metabolism, Ferroptosis, and Cancer: New Targets and Prospects for Effective Anticancer Therapeutic Interventions. Cancers 2026, 18, 1436. https://doi.org/10.3390/cancers18091436
Kourti M, Kontoghiorghes GJ. Linking Iron Metabolism, Ferroptosis, and Cancer: New Targets and Prospects for Effective Anticancer Therapeutic Interventions. Cancers. 2026; 18(9):1436. https://doi.org/10.3390/cancers18091436
Chicago/Turabian StyleKourti, Malamati, and George J. Kontoghiorghes. 2026. "Linking Iron Metabolism, Ferroptosis, and Cancer: New Targets and Prospects for Effective Anticancer Therapeutic Interventions" Cancers 18, no. 9: 1436. https://doi.org/10.3390/cancers18091436
APA StyleKourti, M., & Kontoghiorghes, G. J. (2026). Linking Iron Metabolism, Ferroptosis, and Cancer: New Targets and Prospects for Effective Anticancer Therapeutic Interventions. Cancers, 18(9), 1436. https://doi.org/10.3390/cancers18091436
