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Published on: June 30, 2023
Expression and localization of mitochondrial ferritin mRNA in Alzheimer's disease cerebral cortex
Ligang Wang1, Hongkuan Yang, Shiguang Zhao
1Molecular Neuroscience Research Center, Shiga University of Medical Science, Otsu, Japan.
Abstract:
Mitochondrial ferritin (MtF) has been identified as a novel ferritin encoded by an intron-lacking gene with specific mitochondrial localization located on chromosome 5q23.1. MtF has been associated with neurodegenerative disorders such as Friedreich ataxia and restless leg syndrome. However, little information is available about MtF in Alzheimer's disease (AD). In this study, therefore, we investigated the expression and localization of MtF messenger RNA (mRNA) in the cerebral cortex of AD and control cases using real-time polymerase chain reaction (PCR) as well as in situ hybridization histochemistry. We also examined protein expression using western-blot assay. In addition, we used in vitro methods to further explore the effect of oxidative stress and β-amyloid peptide (Aβ) on MtF expression. To do this we examined MtF mRNA and protein expression changes in the human neuroblastoma cell line, IMR-32, after treatment with Aβ, H2O2, or both. The neuroprotective effect of MtF on oxidative stress induced by H(2)O(2) was measured by MTT assay. The in situ hybridization studies revealed that MtF mRNA was detected mainly in neurons to a lesser degree in glial cells in the cerebral cortex. The staining intensity and the number of positive cells were increased in the cerebral cortex of AD patients. Real-time PCR and western-blot confirmed that MtF expression levels in the cerebral cortex were significantly higher in AD cases than that in control cases at both the mRNA and the protein level. Cell culture experiments demonstrated that the expression of both MtF mRNA and protein were increased by treatment with H2O2 or a combination of Aβ and H2O2, but not with Aβ alone. Finally, MtF expression showed a significant neuroprotective effect against H2O2-induced oxidative stress (p<0.05). The present study suggests that MtF is involved in the pathology of AD and may play a neuroprotective role against oxidative stress.
Insights
Mitochondrial ferritin (MtF) is elevated in Alzheimer's disease (AD) brains and protects neurons against oxidative stress. This study investigated MtF expression and its role in AD pathology, revealing its potential neuroprotective function.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Mitochondrial ferritin (MtF) is a novel protein with specific mitochondrial localization.
- MtF is implicated in neurodegenerative disorders but its role in Alzheimer's disease (AD) is unclear.
Purpose of the Study:
- To investigate the expression and localization of MtF mRNA and protein in the cerebral cortex of AD patients.
- To explore the effect of oxidative stress and beta-amyloid (Aβ) on MtF expression in vitro.
- To determine the neuroprotective role of MtF against oxidative stress.
Main Methods:
- In situ hybridization histochemistry for MtF mRNA localization.
- Real-time PCR and Western-blot assay for MtF mRNA and protein expression quantification.
- In vitro studies using IMR-32 neuroblastoma cells treated with Aβ and H2O2.
- MTT assay to measure cell viability and neuroprotection.
Main Results:
- MtF mRNA was detected in neurons and glial cells in the cerebral cortex, with increased expression in AD cases.
- Both MtF mRNA and protein levels were significantly higher in the cerebral cortex of AD patients compared to controls.
- Oxidative stress (H2O2) or combined Aβ and H2O2 treatment increased MtF expression in cell cultures.
- MtF demonstrated a significant neuroprotective effect against H2O2-induced oxidative stress.
Conclusions:
- Mitochondrial ferritin expression is upregulated in Alzheimer's disease.
- MtF plays a significant neuroprotective role against oxidative stress, suggesting its involvement in AD pathology.
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Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of Life

