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Automated Measurement of Pulmonary Emphysema and Small Airway Remodeling in Cigarette Smoke-exposed Mice
Published on: January 16, 2015
miR-638 regulates gene expression networks associated with emphysematous lung destruction
Stephanie A Christenson1, Corry-Anke Brandsma2, Joshua D Campbell3
1Division of Computational Biomedicine, Department of Medicine, Boston University School of Medicine, 72 East Concord Street Boston, MA 02118, USA ; Department of Pulmonary and Critical Care Medicine, University of California, San Francisco, 513 Parnassus Ave, San Francisco, CA 94143, USA.
Background:
Chronic obstructive pulmonary disease (COPD) is a heterogeneous disease characterized by varying degrees of emphysematous lung destruction and small airway disease, each with distinct effects on clinical outcomes. There is little known about how microRNAs contribute specifically to the emphysema phenotype. We examined how genome-wide microRNA expression is altered with regional emphysema severity and how these microRNAs regulate disease-associated gene expression networks.
Methods:
We profiled microRNAs in different regions of the lung with varying degrees of emphysema from 6 smokers with COPD and 2 controls (8 regions × 8 lungs = 64 samples). Regional emphysema severity was quantified by mean linear intercept. Whole genome microRNA and gene expression data were integrated in the same samples to build co-expression networks. Candidate microRNAs were perturbed in human lung fibroblasts in order to validate these networks.
Results:
The expression levels of 63 microRNAs (P < 0.05) were altered with regional emphysema. A subset, including miR-638, miR-30c, and miR-181d, had expression levels that were associated with those of their predicted mRNA targets. Genes correlated with these microRNAs were enriched in pathways associated with emphysema pathophysiology (for example, oxidative stress and accelerated aging). Inhibition of miR-638 expression in lung fibroblasts led to modulation of these same emphysema-related pathways. Gene targets of miR-638 in these pathways were amongst those negatively correlated with miR-638 expression in emphysema.
Conclusions:
Our findings demonstrate that microRNAs are altered with regional emphysema severity and modulate disease-associated gene expression networks. Furthermore, miR-638 may regulate gene expression pathways related to the oxidative stress response and aging in emphysematous lung tissue and lung fibroblasts.
Insights
MicroRNAs are altered in chronic obstructive pulmonary disease (COPD) with emphysema severity. miR-638 may regulate oxidative stress and aging pathways in emphysematous lung tissue.
Area of Science:
- Pulmonary Medicine
- Molecular Biology
- Genetics
Background:
- Chronic obstructive pulmonary disease (COPD) is a complex lung disease with varying emphysema and small airway disease.
- The specific role of microRNAs in the emphysema phenotype of COPD is not well understood.
Purpose of the Study:
- To investigate how genome-wide microRNA expression changes with regional emphysema severity in COPD.
- To determine how these microRNAs regulate gene expression networks associated with COPD pathophysiology.
Main Methods:
- MicroRNA expression profiling was performed on lung tissue samples from COPD patients with varying emphysema.
- Genome-wide microRNA and gene expression data were integrated to build co-expression networks.
- Candidate microRNAs were functionally validated in human lung fibroblasts.
Main Results:
- 63 microRNAs showed altered expression levels correlated with regional emphysema severity.
- Specific microRNAs, including miR-638, miR-30c, and miR-181d, were associated with their predicted mRNA targets.
- Genes correlated with these microRNAs were enriched in emphysema-related pathways like oxidative stress and aging. Inhibition of miR-638 modulated these pathways in lung fibroblasts.
Conclusions:
- MicroRNAs are significantly altered with regional emphysema severity in COPD.
- These microRNAs play a role in modulating disease-associated gene expression networks.
- miR-638 is a potential regulator of oxidative stress and aging pathways in emphysema.
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