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Updated: Sep 25, 2025

Assessing Anti-fungal Activity of Isolated Alveolar Macrophages by Confocal Microscopy
Published on: July 9, 2014
A time-dependently regulated gene network reveals that Aspergillus protease affects mitochondrial metabolism and
Yun Hee Kim1, Taesoo Kim1, Kon-Young Ji1
1KM Convergence Research Division, Korea Institute of Oriental Medicine, 1672 Yuseong-daero, Yuseong-gu, Daejeon, 34054, Republic of Korea.
Abstract:
The airway epithelium maintains tight barrier integrity to prevent penetration of pathogens; thus, impairment of the barrier function is an important and common histological feature in asthmatic patients. Proteolytic allergens from fungi, pollen, and house dust mites can disrupt epithelial barrier integrity, but the mechanism remains unclear. Aspergillus oryzae protease (AP)-induced mitochondrial reactive oxygen species (ROS) contribute to the epithelial inflammatory response. However, as mitochondrial ROS affect various cellular functions, such as metabolism, cell death, cell proliferation, and redox homeostasis through signal transduction, it is difficult to understand the detailed action mechanism of AP by measuring changes in a single gene or protein of a specific signaling pathway. Moreover, mitochondrial ROS can directly oxidize DNA to activate transcription, thereby affecting the expression of various genes at the transcriptional level. Therefore, we conducted whole-genome analysis and used a network-based approach to understand the effect of AP and AP-induced mitochondrial ROS in human primary airway epithelial cells and to evaluate the mechanistic basis for AP-mediated epithelial barrier dysfunction. Our results indicate that production of mitochondrial ROS following AP exposure induce mitochondrial dysfunction at an early stage. Over time, changes in genome expression were further expanded without remaining mitochondrial ROS. Specifically, genes involved in the apoptotic functions and intercellular junctions were affected, consequently impairing the cellular barrier integrity. This change was recovered by scavenging mitochondrial ROS at an early point after exposure to AP. In conclusion, our findings indicate that instantly increased mitochondrial ROS at the time of exposure to allergenic proteases consequently induces epithelial barrier dysfunction at a later time point, resulting in pathological changes. These data suggest that antioxidant therapy administered immediately after exposure to proteolytic antigens may be effective in maintaining epithelial barrier function.
Insights
Allergenic proteases disrupt airway epithelial barrier function by increasing mitochondrial reactive oxygen species (ROS). Early antioxidant treatment can prevent this damage, suggesting a therapeutic approach for asthma.
Area of Science:
- Cellular biology
- Immunology
- Respiratory medicine
Background:
- Airway epithelial barrier integrity is crucial for preventing pathogen entry.
- Impaired barrier function is a hallmark of asthma.
- The mechanism by which allergens disrupt this barrier is not fully understood.
Purpose of the Study:
- To elucidate the mechanism of Aspergillus oryzae protease (AP)-induced airway epithelial barrier dysfunction.
- To investigate the role of mitochondrial reactive oxygen species (ROS) in this process.
- To evaluate the potential of early antioxidant intervention.
Main Methods:
- Whole-genome analysis in human primary airway epithelial cells.
- Network-based approach to analyze gene expression changes.
- Assessment of mitochondrial ROS production and mitochondrial function.
- Evaluation of epithelial barrier integrity and gene expression related to apoptosis and intercellular junctions.
Main Results:
- AP exposure rapidly induced mitochondrial ROS and subsequent mitochondrial dysfunction.
- Delayed effects included altered gene expression, particularly affecting apoptosis and intercellular junction genes.
- These changes led to impaired epithelial barrier integrity.
- Early scavenging of mitochondrial ROS prevented the long-term barrier dysfunction.
Conclusions:
- Instantaneous mitochondrial ROS increase upon protease exposure triggers delayed epithelial barrier dysfunction.
- This dysfunction contributes to the pathology observed in conditions like asthma.
- Prompt antioxidant therapy post-exposure may preserve epithelial barrier function.
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