Harnessing ferroptosis to transform glioblastoma therapy and surmount treatment resistance

Shilpi Singh1, Iteeshree Mohapatra2, Debashis Barik3

  • 1Department of Neurosurgery, University of Minnesota, Minneapolis, MN, USA.

Cell Death Discovery
|October 7, 2025
PubMed

Insights

Ferroptosis, an iron-dependent cell death, offers a novel strategy against glioblastoma by bypassing DNA repair resistance. Targeting ferroptosis vulnerabilities can overcome treatment resistance and improve patient outcomes.

Area of Science:

  • Oncology
  • Cell Death Mechanisms
  • Cancer Therapeutics

Background:

  • Glioblastoma is a highly aggressive brain malignancy characterized by genetic heterogeneity, metabolic plasticity, and an immunosuppressive tumor microenvironment.
  • Current therapies targeting DNA damage are often ineffective due to glioma stem cell (GSC) resistance via compensatory DNA repair pathways.
  • Resistance to conventional treatments contributes to glioblastoma recurrence and poor patient prognosis.

Purpose of the Study:

  • To explore ferroptosis as a novel therapeutic strategy against glioblastoma, exploiting its metabolic vulnerabilities.
  • To review the mechanisms of ferroptosis and its resistance pathways in glioblastoma.
  • To discuss the potential of ferroptosis-based strategies in combination with existing therapies to enhance glioblastoma treatment efficacy.

Main Methods:

  • Review of existing literature on glioblastoma, ferroptosis, and therapeutic resistance mechanisms.
  • Analysis of ferroptosis induction pathways, including lipid peroxidation and iron metabolism.
  • Examination of resistance mechanisms to ferroptosis, such as iron regulators and protective pathways.

Main Results:

  • Ferroptosis, an iron-dependent cell death, effectively targets glioblastoma by inducing lipid peroxidation and oxidative stress, bypassing DNA repair mechanisms.
  • Resistance to ferroptosis involves regulators of iron metabolism, lipid peroxidation enzymes, and protective pathways like glutathione peroxidase 4.
  • Ferroptosis can modulate the tumor microenvironment, enhancing anti-tumor immunity and improving the efficacy of immunotherapy.

Conclusions:

  • Ferroptosis presents a promising therapeutic avenue for glioblastoma, particularly against therapy-resistant glioma stem cells.
  • Combining ferroptosis-based strategies with chemotherapy, radiotherapy, and immunotherapy holds potential for improved treatment outcomes.
  • Personalized ferroptosis approaches considering glioblastoma's heterogeneity, immune interactions, and metabolic adaptations are crucial for durable treatment responses.