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Updated: Nov 14, 2025

Author Spotlight: Transmitochondrial Cybrid Generation Using Cancer Cell Lines
Published on: March 17, 2023
Targeting Mitochondrial Iron Metabolism Suppresses Tumor Growth and Metastasis by Inducing Mitochondrial Dysfunction
Cristian Sandoval-Acuña1, Natalia Torrealba1, Veronika Tomkova1
1Institute of Biotechnology of the Czech Academy of Sciences, BIOCEV Research Center, Vestec, Czech Republic.
Abstract:
Deferoxamine (DFO) represents a widely used iron chelator for the treatment of iron overload. Here we describe the use of mitochondrially targeted deferoxamine (mitoDFO) as a novel approach to preferentially target cancer cells. The agent showed marked cytostatic, cytotoxic, and migrastatic properties in vitro, and it significantly suppressed tumor growth and metastasis in vivo. The underlying molecular mechanisms included (i) impairment of iron-sulfur [Fe-S] cluster/heme biogenesis, leading to destabilization and loss of activity of [Fe-S] cluster/heme containing enzymes, (ii) inhibition of mitochondrial respiration leading to mitochondrial reactive oxygen species production, resulting in dysfunctional mitochondria with markedly reduced supercomplexes, and (iii) fragmentation of the mitochondrial network and induction of mitophagy. Mitochondrial targeting of deferoxamine represents a way to deprive cancer cells of biologically active iron, which is incompatible with their proliferation and invasion, without disrupting systemic iron metabolism. Our findings highlight the importance of mitochondrial iron metabolism for cancer cells and demonstrate repurposing deferoxamine into an effective anticancer drug via mitochondrial targeting. SIGNIFICANCE: These findings show that targeting the iron chelator deferoxamine to mitochondria impairs mitochondrial respiration and biogenesis of [Fe-S] clusters/heme in cancer cells, which suppresses proliferation and migration and induces cell death. GRAPHICAL ABSTRACT: http://cancerres.aacrjournals.org/content/canres/81/9/2289/F1.large.jpg.
Insights
Mitochondrially targeted deferoxamine (mitoDFO) effectively targets cancer cells by disrupting iron metabolism, inhibiting respiration, and inducing cell death. This approach suppresses tumor growth and metastasis without affecting systemic iron levels.
Area of Science:
- Oncology
- Mitochondrial Biology
- Biochemistry
Background:
- Deferoxamine (DFO) is an iron chelator used for iron overload.
- Cancer cells exhibit altered iron metabolism crucial for their growth and survival.
- Targeting cancer-specific metabolic vulnerabilities is a promising therapeutic strategy.
Purpose of the Study:
- To investigate the efficacy of mitochondrially targeted deferoxamine (mitoDFO) as a novel anti-cancer agent.
- To elucidate the molecular mechanisms underlying mitoDFO's anti-cancer effects.
- To assess mitoDFO's potential for suppressing tumor growth and metastasis.
Main Methods:
- Synthesis and characterization of mitoDFO.
- In vitro evaluation of cytostatic, cytotoxic, and migrastatic properties.
- In vivo studies assessing tumor growth and metastasis suppression.
- Analysis of molecular mechanisms including iron-sulfur cluster biogenesis, mitochondrial respiration, and mitophagy.
Main Results:
- MitoDFO demonstrated significant cytostatic, cytotoxic, and migrastatic effects in vitro.
- MitoDFO markedly suppressed tumor growth and metastasis in vivo.
- Mechanisms involved impaired iron-sulfur cluster/heme biogenesis, inhibited mitochondrial respiration, and induced mitophagy.
- MitoDFO selectively targets cancer cells by disrupting mitochondrial iron metabolism.
Conclusions:
- Mitochondrial targeting of deferoxamine is a viable strategy to selectively deprive cancer cells of iron.
- MitoDFO exhibits potent anti-cancer properties by disrupting essential mitochondrial functions.
- Repurposing deferoxamine via mitochondrial targeting offers a novel therapeutic approach for cancer treatment.
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