Related Experiment Video
Updated: Nov 17, 2025

Mouse Model of Oleic Acid-Induced Acute Respiratory Distress Syndrome
Published on: June 2, 2022
Role of Mitochondrial DNA in Inflammatory Airway Diseases
Ryan J Snyder1, Steven R Kleeberger1
1National Institute of Environmental Health Sciences, NIH, Durham, North Carolina, USA.
Abstract:
The mitochondrial genome is a small, circular, and highly conserved piece of DNA which encodes only 13 protein subunits yet is vital for electron transport in the mitochondrion and, therefore, vital for the existence of multicellular life on Earth. Despite this importance, mitochondrial DNA (mtDNA) is located in one of the least-protected areas of the cell, exposing it to high concentrations of intracellular reactive oxygen species (ROS) and threat from exogenous substances and pathogens. Until recently, the quality control mechanisms which ensured the stability of the nuclear genome were thought to be minimal or nonexistent in the mitochondria, and the thousands of redundant copies of mtDNA in each cell were believed to be the primary mechanism of protecting these genes. However, a vast network of mechanisms has been discovered that repair mtDNA lesions, replace and recycle mitochondrial chromosomes, and conduct alternate RNA processing for previously undescribed mitochondrial proteins. New mtDNA/RNA-dependent signaling pathways reveal a mostly undiscovered biochemical landscape in which the mitochondria interface with their host cells/organisms. As the myriad ways in which the function of the mitochondrial genome can affect human health have become increasingly apparent, the use of mitogenomic biomarkers (such as copy number and heteroplasmy) as toxicological endpoints has become more widely accepted. In this article, we examine several pathologies of human airway epithelium, including particle exposures, inflammatory diseases, and hyperoxia, and discuss the role of mitochondrial genotoxicity in the pathogenesis and/or exacerbation of these conditions. © 2021 American Physiological Society. Compr Physiol 11:1485-1499, 2021.
Insights
Mitochondrial DNA (mtDNA), vital for life, faces damage due to its cellular location. Recent discoveries reveal complex repair and signaling pathways protecting this crucial genome, impacting human health.
Area of Science:
- Mitochondrial genomics
- Cellular biology
- Toxicology
Background:
- The mitochondrial genome (mtDNA) encodes essential proteins for cellular respiration but is vulnerable to damage from reactive oxygen species and other threats.
- Previously, limited quality control mechanisms were thought to exist for mtDNA, with redundancy considered the primary protection.
- Emerging research highlights a sophisticated network of mtDNA repair, recycling, and RNA processing mechanisms.
Purpose of the Study:
- To review the evolving understanding of mitochondrial genome stability and repair mechanisms.
- To explore novel mtDNA/RNA-dependent signaling pathways.
- To discuss the role of mitochondrial genotoxicity in airway epithelium pathologies.
Main Methods:
- Review of current literature on mitochondrial DNA repair and quality control.
- Analysis of emerging signaling pathways involving mtDNA and RNA.
- Examination of case studies linking mitochondrial genotoxicity to airway diseases.
Main Results:
- Discovery of extensive mechanisms for mtDNA lesion repair, chromosome replacement, and RNA processing.
- Identification of new mtDNA/RNA-dependent signaling pathways.
- Association of mitochondrial genotoxicity with conditions like particle exposure, inflammation, and hyperoxia in airway epithelium.
Conclusions:
- Mitochondria possess a complex, largely undiscovered system for maintaining genome integrity.
- Mitochondrial genotoxicity plays a significant role in the pathogenesis of various airway diseases.
- Mitogenomic biomarkers like copy number and heteroplasmy are valuable toxicological endpoints.
Related Concept Videos
Animal Mitochondrial Genetics
Asthma: Pathogenesis and Management
Asthma is classified as allergic and non-allergic. Allergens such as dust mites, pollen, and pet dander trigger allergic asthma, while factors like cold air, intense emotions, or exercise can induce non-allergic asthma.
Chronic Obstructive Pulmonary Disease-II: Pathophysiology
Chronic Inflammation
Asthma-II: Pathophysiology and Classification
Additionally, environmental and genetic factors play crucial roles in determining an individual's susceptibility to asthma and the severity of their condition.
Critical processes in asthma pathophysiology include:
Asthma-I: Introduction
Mitochondrial Membranes

