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Updated: May 11, 2026

Methodology for Accurate Detection of Mitochondrial DNA Methylation
Published on: May 20, 2018
Effects of airborne pollutants on mitochondrial DNA methylation
Hyang-Min Byun1, Tommaso Panni, Valeria Motta
1Laboratory of Environmental Epigenetics, Exposure Epidemiology and Risk Program, Harvard School of Public Health, Boston, MA 02115, USA. hmbyun@hsph.harvard.edu
Background:
Mitochondria have small mitochondrial DNA (mtDNA) molecules independent from the nuclear DNA, a separate epigenetic machinery that generates mtDNA methylation, and are primary sources of oxidative-stress generation in response to exogenous environments. However, no study has yet investigated whether mitochondrial DNA methylation is sensitive to pro-oxidant environmental exposures.
Methods:
We sampled 40 male participants (20 high-, 20 low-exposure) from each of three studies on airborne pollutants, including investigations of steel workers exposed to metal-rich particulate matter (measured as PM1) in Brescia, Italy (Study 1); gas-station attendants exposed to air benzene in Milan, Italy (Study 2); and truck drivers exposed to traffic-derived Elemental Carbon (EC) in Beijing, China (Study 3). We have measured DNA methylation from buffy coats of the participants. We measured methylation by bisulfite-Pyrosequencing in three mtDNA regions, i.e., the transfer RNA phenylalanine (MT-TF), 12S ribosomal RNA (MT-RNR1) gene and "D-loop" control region. All analyses were adjusted for age and smoking.
Results:
In Study 1, participants with high metal-rich PM1 exposure showed higher MT-TF and MT-RNR1 methylation than low-exposed controls (difference = 1.41, P = 0.002); MT-TF and MT-RNR1 methylation was significantly associated with PM1 exposure (beta = 1.35, P = 0.025); and MT-RNR1 methylation was positively correlated with mtDNA copy number (r = 0.36; P = 0.02). D-loop methylation was not associated with PM1 exposure. We found no effects on mtDNA methylation from air benzene (Study 2) and traffic-derived EC exposure (Study 3).
Conclusions:
Mitochondrial MT-TF and MT-RNR1 DNA methylation was associated with metal-rich PM1 exposure and mtDNA copy number. Our results suggest that locus-specific mtDNA methylation is correlated to selected exposures and mtDNA damage. Larger studies are needed to validate our observations.
Insights
Mitochondrial DNA methylation in MT-TF and MT-RNR1 genes increased with exposure to metal-rich particulate matter (PM1). This suggests locus-specific mtDNA methylation may indicate environmental exposures and mtDNA damage.
Area of Science:
- Environmental epigenetics
- Mitochondrial biology
- Toxicology
Background:
- Mitochondria possess their own DNA (mtDNA) and epigenetic machinery.
- Mitochondrial DNA methylation is a potential biomarker for environmental exposures.
- Previous studies have not explored the link between mtDNA methylation and pro-oxidant exposures.
Purpose of the Study:
- To investigate the association between environmental exposures and mitochondrial DNA methylation.
- To determine if specific mtDNA methylation sites are sensitive to airborne pollutants.
Main Methods:
- Analyzed mtDNA methylation in 40 high- and 40 low-exposed male participants from three studies (steel workers, gas-station attendants, truck drivers).
- Measured methylation in MT-TF, MT-RNR1, and D-loop regions using bisulfite-Pyrosequencing.
- Adjusted analyses for age and smoking status.
Main Results:
- High metal-rich PM1 exposure correlated with increased MT-TF and MT-RNR1 methylation (P=0.002).
- MT-RNR1 methylation positively associated with mtDNA copy number (P=0.02).
- No significant associations found for air benzene or elemental carbon exposure.
Conclusions:
- Locus-specific mitochondrial DNA methylation, particularly in MT-TF and MT-RNR1, is associated with metal-rich PM1 exposure.
- mtDNA methylation may serve as a biomarker for specific environmental exposures and mtDNA damage.
- Further research with larger cohorts is recommended to validate these findings.
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