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Published on: January 22, 2017
Chelation of mitochondrial iron prevents seizure-induced mitochondrial dysfunction and neuronal injury
Li-Ping Liang1, Stuart G Jarrett, Manisha Patel
1Department of Pharmaceutical Sciences, University of Colorado Denver, Aurora, Colorado 80045, USA.
Abstract:
Chelatable iron is an important catalyst for the initiation and propagation of free radical reactions and implicated in the pathogenesis of diverse neuronal disorders. Studies in our laboratory have shown that mitochondria are the principal source of reactive oxygen species production after status epilepticus (SE). We asked whether SE modulates mitochondrial iron levels by two independent methods and whether consequent mitochondrial dysfunction and neuronal injury could be ameliorated with a cell-permeable iron chelator. Kainate-induced SE resulted in a time-dependent increase in chelatable iron in mitochondrial but not cytosolic fractions of the rat hippocampus. Systemically administered N,N'-bis (2-hydroxybenzyl) ethylenediamine-N,N'-diacetic acid (HBED), a synthetic iron chelator, ameliorated SE-induced changes in chelatable iron, mitochondrial oxidative stress (8-hydroxy-2' deoxyguanosine and glutathione depletion), mitochondrial DNA integrity and hippocampal cell loss. Measurement of brain HBED levels after systemic administration confirmed its penetration in hippocampal mitochondria. These results suggest a role for mitochondrial iron in the pathogenesis of SE-induced brain damage and subcellular iron chelation as a novel therapeutic approach for its management.
Insights
Mitochondrial iron increases during seizures, causing brain damage. An iron chelator (HBED) protected against this damage, suggesting a new treatment for seizures.
Area of Science:
- Neuroscience
- Biochemistry
- Cell Biology
Background:
- Chelatable iron catalyzes free radical reactions, contributing to neuronal disorders.
- Mitochondria are key sources of reactive oxygen species after status epilepticus (SE).
Purpose of the Study:
- To investigate if SE alters mitochondrial iron levels.
- To determine if a cell-permeable iron chelator can prevent SE-induced mitochondrial dysfunction and neuronal injury.
Main Methods:
- Kainate-induced SE in rats.
- Measured mitochondrial and cytosolic chelatable iron.
- Administered N,N'-bis(2-hydroxybenzyl)ethylenediamine-N,N'-diacetic acid (HBED), an iron chelator.
- Assessed mitochondrial oxidative stress, DNA integrity, and hippocampal cell loss.
Main Results:
- SE increased mitochondrial, but not cytosolic, iron over time.
- HBED treatment reduced mitochondrial iron, oxidative stress, and DNA damage.
- HBED successfully penetrated hippocampal mitochondria.
- HBED administration lessened hippocampal cell loss after SE.
Conclusions:
- Mitochondrial iron plays a role in SE-induced brain damage.
- Subcellular iron chelation is a potential therapeutic strategy for managing SE.
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