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Published on: May 23, 2025
Iron accumulates in Huntington's disease neurons: protection by deferoxamine
Jianfang Chen1, Eileen Marks, Barry Lai
1Department of Veterinary Sciences and Neuroscience Graduate Program, University of Wyoming, Laramie, Wyoming, United States of America.
Insights
Iron accumulates in specific neuronal compartments in Huntington's disease (HD) mouse models. Reducing this iron with deferoxamine improved motor function, suggesting iron's role in HD progression.
Area of Science:
- Neuroscience
- Genetics
- Biochemistry
Background:
- Huntington's disease (HD) is a neurodegenerative disorder linked to CAG repeat expansion in the huntingtin gene.
- Iron accumulation in the brain is observed in HD patients and models, but its precise location and role are unclear.
Purpose of the Study:
- To pinpoint the cellular and subcellular locations of iron accumulation in the HD brain.
- To investigate the functional significance of iron dysregulation in HD pathogenesis.
- To evaluate the therapeutic potential of iron chelation in HD.
Main Methods:
- Synchrotron X-ray fluorescence and transmission electron microscopy were used to analyze iron distribution in R6/2 HD mouse brains.
- Levels of iron homeostasis proteins, including iron-responsive proteins (IRPs), transferrin receptor (TfR), and ferroportin (FPN), were assessed.
- The effect of the iron chelator deferoxamine on motor phenotype was evaluated in R6/2 HD mice.
Main Results:
- Iron was found to accumulate in discrete puncta within the perinuclear cytoplasm and peri-nuclear vesicles of striatal neurons in R6/2 HD mice.
- Expression analysis revealed decreased IRPs and TfR, and increased FPN, suggesting a compensatory response to elevated intracellular iron.
- Deferoxamine treatment led to a significant improvement in the motor phenotype of R6/2 HD mice.
Conclusions:
- Redox-active ferrous iron accumulates in the endocytic/lysosomal compartment of neurons in a mouse model of HD.
- Altered expression of iron homeostasis proteins indicates an increased labile iron pool and susceptibility to oxidative stress.
- Targeting neuronal iron accumulation with chelators like deferoxamine shows therapeutic promise for Huntington's disease.
Abstract:
Huntington's disease (HD) is a progressive neurodegenerative disorder caused by a polyglutamine-encoding CAG expansion in the huntingtin gene. Iron accumulates in the brains of HD patients and mouse disease models. However, the cellular and subcellular sites of iron accumulation, as well as significance to disease progression are not well understood. We used independent approaches to investigate the location of brain iron accumulation. In R6/2 HD mouse brain, synchotron x-ray fluorescence analysis revealed iron accumulation as discrete puncta in the perinuclear cytoplasm of striatal neurons. Further, perfusion Turnbull's staining for ferrous iron (II) combined with transmission electron microscope ultra-structural analysis revealed increased staining in membrane bound peri-nuclear vesicles in R6/2 HD striatal neurons. Analysis of iron homeostatic proteins in R6/2 HD mice revealed decreased levels of the iron response proteins (IRPs 1 and 2) and accordingly decreased expression of iron uptake transferrin receptor (TfR) and increased levels of neuronal iron export protein ferroportin (FPN). Finally, we show that intra-ventricular delivery of the iron chelator deferoxamine results in an improvement of the motor phenotype in R6/2 HD mice. Our data supports accumulation of redox-active ferrous iron in the endocytic / lysosomal compartment in mouse HD neurons. Expression changes of IRPs, TfR and FPN are consistent with a compensatory response to an increased intra-neuronal labile iron pool leading to increased susceptibility to iron-associated oxidative stress. These findings, together with protection by deferoxamine, support a potentiating role of neuronal iron accumulation in HD.
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