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Updated: Jul 15, 2026

Enhanced Reduced Representation Bisulfite Sequencing for Assessment of DNA Methylation at Base Pair Resolution
Published on: February 24, 2015
Airway MMP-12 and DNA methylation in COPD: an integrative approach
Jonas Eriksson Ström1, Simon Kebede Merid2, Robert Linder3
1Department of Public Health and Clinical Medicine, Section of Medicine, Umeå University, 901 87, Umeå, Sweden. jonas.eriksson.strom@umu.se.
Background:
In COPD, the balance between matrix metalloproteinases (MMPs) and their natural inhibitors [tissue inhibitors of metalloproteinases (TIMPs)] is shifted towards excessive degradation, reflected in bronchoalveolar lavage (BAL) as increased MMP concentrations. Because of their critical role in lung homeostasis, MMP activity is tightly regulated, but to what extent this regulation occurs through epigenetic mechanisms remains unknown.
Methods:
To explore the interplay between MMPs, TIMPs, and DNA methylation (DNAm) we (1) analysed MMP-9, -12, and TIMP-1 concentrations in BAL fluid, and profiled DNAm in BAL cells from 18 COPD and 30 control subjects, (2) estimated protein-COPD relationships using multivariable regression, (3) identified protein quantitative trait methylation loci (pQTMs) with COPD as a potential modifier in a separate interaction model, and (4) integrated significant interactions with a previous COPD GWAS meta-analysis.
Results:
COPD was associated with higher levels of BAL MMP-12 (p = 0.016) but not with MMP-9 or TIMP-1. Further examination of MMP-12 identified association with DNAm at 34 loci (pQTMs), with TGFBR2 (p = 2.25 × 10-10) and THBS4 (p = 1.11 × 10-9) among the top ten pQTM genes. The interaction model identified 66 sites where the DNAm-MMP-12 association was significantly different in COPD compared to controls. Of these, one was colocalized with SNPs previously associated with COPD.
Conclusions:
Our findings indicate that airway MMP-12 may partially be regulated by epigenetic mechanisms and that this regulation is disrupted in COPD. Furthermore, integration with COPD GWAS data suggests that this dysregulation is influenced by a combination of environmental factors, disease processes, and genetics, with the latter potentially playing a lesser role.
Insights
Chronic Obstructive Pulmonary Disease (COPD) involves altered matrix metalloproteinase (MMP) regulation, potentially through DNA methylation. This study reveals epigenetic disruption of MMP-12 in COPD, influenced by genetics and environmental factors.
Area of Science:
- Pulmonary Medicine
- Epigenetics
- Genomics
Background:
- Chronic Obstructive Pulmonary Disease (COPD) is characterized by an imbalance between matrix metalloproteinases (MMPs) and tissue inhibitors of metalloproteinases (TIMPs), leading to excessive tissue degradation.
- The precise role of epigenetic mechanisms, such as DNA methylation, in regulating MMP activity in COPD remains largely unexplored.
Purpose of the Study:
- To investigate the interplay between MMPs, TIMPs, and DNA methylation in COPD.
- To identify potential epigenetic regulators of MMP-12 and their association with COPD.
Main Methods:
- Analysis of MMP-9, MMP-12, and TIMP-1 concentrations in bronchoalveolar lavage (BAL) fluid.
- Profiling of DNA methylation in BAL cells from COPD and control subjects.
- Identification of protein quantitative trait methylation loci (pQTMs) and integration with COPD Genome-Wide Association Study (GWAS) data.
Main Results:
- COPD patients exhibited significantly higher levels of MMP-12 in BAL fluid compared to controls.
- DNA methylation at 34 loci (pQTMs) was associated with MMP-12 levels, with TGFBR2 and THBS4 identified as top genes.
- A significant interaction between DNA methylation and COPD status was observed for MMP-12 regulation at 66 sites, with one locus overlapping with previously identified COPD-associated SNPs.
Conclusions:
- Airway MMP-12 levels in COPD are partially regulated by epigenetic mechanisms, and this regulation is disrupted in the disease.
- The observed dysregulation of MMP-12 is likely influenced by a combination of environmental factors, disease processes, and genetic predisposition.
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