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Updated: Mar 10, 2026

Author Spotlight: Assessing the Impact of Novel Iron Chelators on Cancer Cell Metabolism
Published on: February 23, 2024
Iron chelators target both proliferating and quiescent cancer cells
Mårten Fryknäs1, Xiaonan Zhang2,3, Ulf Bremberg4
1Department of Medical Sciences, Division of Cancer Pharmacology and Computational Medicine, Uppsala University, SE-751 85 Uppsala, Sweden.
Abstract:
Poorly vascularized areas of solid tumors contain quiescent cell populations that are resistant to cell cycle-active cancer drugs. The compound VLX600 was recently identified to target quiescent tumor cells and to inhibit mitochondrial respiration. We here performed gene expression analysis in order to characterize the cellular response to VLX600. The compound-specific signature of VLX600 revealed a striking similarity to signatures generated by compounds known to chelate iron. Validation experiments including addition of ferrous and ferric iron in excess, EXAFS measurements, and structure activity relationship analyses showed that VLX600 chelates iron and supported the hypothesis that the biological effects of this compound is due to iron chelation. Compounds that chelate iron possess anti-cancer activity, an effect largely attributed to inhibition of ribonucleotide reductase in proliferating cells. Here we show that iron chelators decrease mitochondrial energy production, an effect poorly tolerated by metabolically stressed tumor cells. These pleiotropic features make iron chelators an attractive option for the treatment of solid tumors containing heterogeneous populations of proliferating and quiescent cells.
Insights
The cancer drug VLX600 targets quiescent tumor cells by chelating iron, inhibiting mitochondrial respiration. This iron chelation offers a novel therapeutic strategy for solid tumors with diverse cell populations.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Solid tumors contain quiescent cells resistant to conventional chemotherapy.
- VLX600 is a novel compound targeting these quiescent cells and inhibiting mitochondrial respiration.
Purpose of the Study:
- To elucidate the mechanism of action of VLX600.
- To characterize the cellular response to VLX600 through gene expression analysis.
Main Methods:
- Gene expression analysis to identify compound-specific signatures.
- Biochemical assays including iron chelation validation (ferrous/ferric iron excess, EXAFS).
- Structure-activity relationship analyses.
Main Results:
- VLX600 exhibits a gene expression signature similar to known iron chelators.
- Experimental validation confirmed that VLX600 chelates iron.
- Iron chelation by VLX600 inhibits mitochondrial energy production.
Conclusions:
- VLX600's anti-cancer effects are attributed to iron chelation.
- Iron chelators, including VLX600, impact mitochondrial metabolism in tumor cells.
- Iron chelators represent a promising therapeutic approach for heterogeneous solid tumors.
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