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Sample Preparation to Bioinformatics Analysis of DNA Methylation: Association Strategy for Obesity and Related Trait Studies
Published on: May 6, 2022
DNA methylation in inflammatory genes among children with obstructive sleep apnea
Jinkwan Kim1, Rakesh Bhattacharjee, Abdelnaby Khalyfa
1Section of Sleep Medicine, Department of Pediatrics, Pritzker School of Medicine, The University of Chicago, Illinois 60637, USA.
Insights
Children with obstructive sleep apnea (OSA) and high inflammation show increased DNA methylation in the FOXP3 gene. This epigenetic change may indicate end-organ vulnerability in pediatric OSA.
Area of Science:
- Pediatric sleep medicine
- Epigenetics
- Immunology
Background:
- Pediatric obstructive sleep apnea (OSA) is linked to end-organ damage via oxidative stress and inflammation.
- Variability in inflammation among children with OSA suggests genetic and environmental influences on DNA methylation patterns in inflammatory genes.
Purpose of the Study:
- To investigate DNA methylation differences in inflammatory genes between children with OSA and varying systemic inflammation levels.
- To identify potential epigenetic biomarkers for inflammation-related end-organ vulnerability in pediatric OSA.
Main Methods:
- Assessed DNA methylation of 24 inflammatory genes in children with OSA (stratified by hsCRP levels) and controls.
- Used polymerase chain reaction (PCR) assays for confirmation and measured hsCRP and myeloid-related protein (MRP) 8/14 levels.
Main Results:
- Forkhead box P3 (FOXP3) showed higher DNA methylation in OSA children with high hsCRP compared to those with low hsCRP and controls.
- FOXP3 DNA methylation levels correlated with hsCRP, MRP 8/14, apnea-hypopnea index (AHI), BMI z score, and apolipoprotein B.
- AHI was independently associated with FOXP3 DNA methylation levels in a regression model.
Conclusions:
- Increased FOXP3 gene methylation is associated with heightened systemic inflammation in pediatric OSA.
- Epigenetic modifications, specifically FOXP3 DNA methylation, may determine the inflammatory phenotype in OSA.
- FOXP3 DNA methylation may serve as a biomarker for end-organ vulnerability in pediatric OSA.
Background:
Pediatric obstructive sleep apnea (OSA) leads to multiple end-organ morbidities that are mediated by the cumulative burden of oxidative stress and inflammation. Because not all children with OSA exhibit increased systemic inflammation, genetic and environmental factors may be affecting patterns of DNA methylation in genes subserving inflammatory functions.
Methods:
DNA from matched children with OSA with and without high levels of high-sensitivity C-reactive protein (hsCRP) were assessed for DNA methylation levels of 24 inflammatory-related genes. Primer-based polymerase chain reaction assays in a case-control setting involving 47 OSA cases and 31 control subjects were conducted to confirm the findings; hsCRP and myeloid-related protein (MRP) 8/14 levels were also assayed.
Measurements And Main Results:
Forkhead box P3 (FOXP3) and interferon regulatory factor 1 (IRF1) showed higher methylation in six children with OSA and high hsCRP levels compared with matched children with OSA and low hsCRP levels (P < 0.05). In the case-control cohort, children with OSA and high CRP levels had higher log FOXP3 DNA methylation levels compared with children with OSA and low CRP levels and control subjects. IRF1 did not exhibit significant differences. FOXP3 DNA methylation levels correlated with hsCRP and MRP 8/14 levels and with apnea-hypopnea index (AHI), BMI z score, and apolipoprotein B levels. A stepwise multiple regression model showed that AHI was independently associated with FOXP3 DNA methylation levels (P < 0.03).
Conclusions:
The FOXP3 gene, which regulates expression of T regulatory lymphocytes, is more likely to display increased methylation among children with OSA who exhibit increased systemic inflammatory responses. Thus, epigenetic modifications may constitute an important determinant of inflammatory phenotype in OSA, and FOXP3 DNA methylation levels may provide a potential biomarker for end-organ vulnerability.
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