Fifty-Hertz Magnetic Field Affects the Epigenetic Modulation of the miR-34b/c in Neuronal Cells.
Claudia ConsalesClaudia CirottiGiuseppe FilomeniMartina PanattaAlessio ButeraCaterina MerlaVanni LoprestoRosanna PintoCarmela MarinoBarbara BenassiPublished in: Molecular neurobiology (2017)
The exposure to extremely low-frequency magnetic fields (ELF-MFs) has been associated to increased risk of neurodegenerative diseases, although the underlying molecular mechanisms are still undefined. Since epigenetic modulation has been recently encountered among the key events leading to neuronal degeneration, we here aimed at assessing if the control of gene expression mediated by miRNAs, namely miRs-34, has any roles in driving neuronal cell response to 50-Hz (1 mT) magnetic field in vitro. We demonstrate that ELF-MFs drive an early reduction of the expression level of miR-34b and miR-34c in SH-SY5Y human neuroblastoma cells, as well as in mouse primary cortical neurons, by affecting the transcription of the common pri-miR-34. This modulation is not p53 dependent, but attributable to the hyper-methylation of the CpG island mapping within the miR-34b/c promoter. Incubation with N-acetyl-l-cysteine or glutathione ethyl-ester fails to restore miR-34b/c expression, suggesting that miRs-34 are not responsive to ELF-MF-induced oxidative stress. By contrast, we show that miRs-34 control reactive oxygen species production and affect mitochondrial oxidative stress triggered by ELF-MFs, likely by modulating mitochondria-related miR-34 targets identified by in silico analysis. We finally demonstrate that ELF-MFs alter the expression of the α-synuclein, which is specifically stimulated upon ELF-MFs exposure via both direct miR-34 targeting and oxidative stress. Altogether, our data highlight the potential of the ELF-MFs to tune redox homeostasis and epigenetic control of gene expression in vitro and shed light on the possible mechanism(s) producing detrimental effects and predisposing neurons to degeneration.
Keyphrases
- gene expression
- dna methylation
- long non coding rna
- poor prognosis
- oxidative stress
- induced apoptosis
- cell proliferation
- long noncoding rna
- reactive oxygen species
- genome wide
- cell cycle arrest
- dna damage
- spinal cord
- magnetic resonance
- endoplasmic reticulum stress
- cancer therapy
- endothelial cells
- diabetic rats
- cell death
- high resolution
- pi k akt
- transcription factor
- cerebral ischemia
- single cell
- molecular docking
- big data
- brain injury
- drug induced
- mass spectrometry
- machine learning
- human health
- deep learning
- heat shock
- data analysis
- subarachnoid hemorrhage
- fluorescent probe
- drug delivery
- heat shock protein