Linking Iron Metabolism, Ferroptosis, and Cancer: New Targets and Prospects for Effective Anticancer Therapeutic

Malamati Kourti1,2, George J Kontoghiorghes1

  • 1Postgraduate Research Institute of Science, Technology, Environment and Medicine, 3021 Limassol, Cyprus.

Cancers
|May 13, 2026
PubMed

Insights

Targeting iron dysregulation and ferroptosis offers new anticancer strategies. Iron chelation therapy, particularly with deferiprone, shows promise in reducing tumor malignancy and metastasis across various cancers.

Area of Science:

  • Oncology
  • Cancer Metabolism
  • Drug Discovery

Background:

  • Iron dysregulation is a key mechanism tumors use to evade treatment and promote metastasis.
  • Tumors manipulate the tumor microenvironment (TME) and immune cells, like tumor-associated macrophages (TAMs), by controlling iron supply.
  • Ferroptosis, a form of regulated cell death, is suppressed by tumors through iron efflux and antioxidant systems.

Purpose of the Study:

  • To explore novel anticancer therapeutic strategies targeting iron dysregulation and ferroptosis.
  • To evaluate the potential of iron chelation therapy in reducing tumor malignancy and metastasis.
  • To highlight ferroptosis as a metabolic vulnerability in treatment-resistant and metastatic cancers.

Main Methods:

  • Review of existing iron chelation therapies (deferoxamine, deferasirox, deferiprone) and their effects on iron-overloaded cancer cells and TAMs.
  • Analysis of clinical trials investigating ferroptosis-inducing or modulating agents.
  • Examination of deferiprone's efficacy in preclinical models of renal, prostate, and breast cancers.

Main Results:

  • Iron chelation therapy, especially deferiprone, can remove excess iron from TAMs and cancer cells, potentially decreasing tumor malignancy and metastasis.
  • Deferiprone has demonstrated anticancer potential in various cancers, including renal, prostate, and breast cancer.
  • Ongoing clinical trials support the translational potential of ferroptosis-based strategies for specific cancer patient groups.

Conclusions:

  • Targeting iron dysregulation and inducing ferroptosis are promising therapeutic strategies for cancer treatment.
  • Iron chelation therapies, alone or in combination with other anticancer drugs, could improve outcomes for patients with treatment-resistant and metastatic cancers.
  • Ferroptosis represents a key metabolic vulnerability that can be exploited for therapeutic benefit in oncology.

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