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March 27, 2026Blood4 citationsOpen Access

Iron overload damages mitochondria and induces metabolic rewiring of hematopoietic stem cells towards glycolysis

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SSSilvia SighinolfiLCLaura CassinaMLMaria Rosa Lidonnici

Key Points

  • This research aims to understand how iron overload affects the function of hematopoietic stem cells, specifically their metabolism and mitochondria.
  • Utilized thalassemic mice to model chronic iron overload.
  • Assessed mitochondrial fitness and bioenergetics in various models of iron overload.
  • Performed in vivo iron reduction to evaluate its effects on HSCs.
  • Iron overload leads to mitochondrial dysfunction characterized by high reactive oxygen species and low membrane potential.
  • Hematopoietic stem cells rely on glycolysis for energy due to impaired oxidative phosphorylation.
  • Restoring mitochondrial function enhances the quiescence and self-renewal ability of iron-overloaded HSCs.

Abstract

Iron is an essential element for most cellular processes and recent evidence highlighted its role in regulating the function of hematopoietic stem cells (HSCs). Abnormal iron levels impact HSC quiescence and self-renewal, however, the mechanism by which iron overload (IO) influences HSC function is still unknown. Here, we show that intracellular IO impairs mitochondrial fitness and bioenergetics, inducing metabolic rewiring. In thalassemic mice, as a model of chronic IO, HSCs accumulate mitochondria with elevated reactive oxygen species (mtROS), low membrane potential and reduced oxidative phosphorylation (OXPHOS). Mitochondrial defects are confirmed in other two models of IO, sickle cell disease and iron-loaded wild-type mice, and in vivo iron reduction rescues HSC mitochondria. IO HSCs are highly proliferating and in presence of damaged mitochondria rely on glycolysis for energy production. Notably, restoration of mitochondrial function by targeting in vivo mtROS improved the quiescence and self-renewal of IO HSCs. Our results unravel the critical interplay between iron, ROS and mitochondrial activity in HSCs, revealing that IO shapes HSC metabolic programs.

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Cite This Study

Sighinolfi et al. (2026) studied this question.

synapsesocial.com/papers/69c620d515a0a509bde19858https://doi.org/10.1182/blood.2025031552
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