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Updated: Apr 8, 2026

Assessing Iron Deposition in the Brains of 5xFAD Mice by Perls'/DAB Staining
Published on: May 23, 2025
Sulforaphane rescues memory dysfunction and synaptic and mitochondrial alterations induced by brain iron accumulation
I C Lavich1, B S de Freitas1, L W Kist2
1Neurobiology and Developmental Biology Laboratory, Faculty of Biosciences, Pontifical Catholic University, 90619-900 Porto Alegre, RS, Brazil.
Abstract:
Iron overload contributes to the development of neurodegeneration and the exacerbation of normal apoptosis rates, largely due to its participation in the Fenton reaction and production of reactive oxygen species (ROS). Mitochondria constitute the major intracellular source of ROS and the main target of attack by free radicals. They are dynamic organelles that bind (fusion) and divide (fission) in response to environmental stimuli, developmental status, and energy needs of the cells. Sulforaphane (SFN) is a natural compound that displays antioxidant and anti-inflammatory activities. This study aims to investigate the effects of SFN on memory deficits and changes in markers of mitochondrial function, DNM1L and OPA1, and the synaptic marker, synaptophysin, induced by neonatal iron treatment. Male rats received vehicle or carbonyl iron (30mg/kg) from the 12th to the 14th postnatal day. In adulthood, they were treated with saline or SFN (0.5 or 5mg/kg) for 14days every other day. Memory deficits were assessed using the object recognition task. DNM1L, OPA1, and synaptophysin levels in the hippocampus were quantified by Western blotting. Results showed that SFN was able to reverse iron-induced decreases in mitochondrial fission protein, DNM1L, as well as synaptophysin levels in the hippocampus, leading to a recovery of recognition memory impairment induced by iron. These findings suggest that SFN may be further investigated as potential agent for the treatment of cognitive deficits associated with neurodegenerative disorders.
Insights
Sulforaphane (SFN) reversed iron-induced memory deficits in rats by restoring mitochondrial function and synaptic protein levels. This suggests SFN
Area of Science:
- Neuroscience
- Mitochondrial Biology
- Neuroprotection
Background:
- Iron overload exacerbates neurodegeneration and apoptosis via reactive oxygen species (ROS) production.
- Mitochondria are key sources of ROS and targets of oxidative damage, influencing cellular health.
- Mitochondrial dynamics (fusion and fission) are crucial for cellular adaptation and energy homeostasis.
Purpose of the Study:
- To investigate the neuroprotective effects of Sulforaphane (SFN) against iron-induced cognitive deficits.
- To examine SFN's impact on mitochondrial function markers (DNM1L, OPA1) and synaptic integrity (synaptophysin) in an iron-overload rat model.
Main Methods:
- Neonatal rats received carbonyl iron or vehicle, followed by adult treatment with saline or SFN.
- Cognitive function was assessed using the object recognition task.
- Hippocampal levels of DNM1L, OPA1, and synaptophysin were quantified via Western blotting.
Main Results:
- SFN treatment reversed iron-induced recognition memory impairment.
- SFN normalized decreased levels of the mitochondrial fission protein DNM1L.
- SFN restored reduced synaptophysin levels in the hippocampus.
Conclusions:
- SFN ameliorates cognitive deficits associated with neonatal iron overload.
- SFN's protective effects involve the modulation of mitochondrial dynamics and synaptic protein expression.
- SFN shows potential as a therapeutic agent for neurodegenerative conditions involving cognitive decline.
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