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Updated: May 8, 2026

Evaluation of Bioenergetic Function in Cerebral Vascular Endothelial Cells
Published on: November 19, 2016
Imbalance of mitochondrial-nuclear cross talk in isocyanate mediated pulmonary endothelial cell dysfunction
Hariom Panwar1, Deepika Jain, Saba Khan
1Department of Biotechnology, Dr. H.S. Gour Central University, Sagar, India ; Department of Research, Bhopal Memorial Hospital & Research Centre, Bhopal, India ; School of Studies in Zoology & Biotechnology, Vikram University, Ujjain, India.
Abstract:
Mechanistic investigations coupled with epidemiology, case-control, cohort and observational studies have increasingly linked isocyanate exposure (both chronic and acute) with pulmonary morbidity and mortality. Though ascribed for impairment in endothelial cell function, molecular mechanisms of these significant adverse pulmonary outcomes remains poorly understood. As preliminary studies conducted in past have failed to demonstrate a cause-effect relationship between isocyanate toxicity and compromised pulmonary endothelial cell function, we hypothesized that direct exposure to isocyanate may disrupt endothelial structural lining, resulting in cellular damage. Based on this premise, we comprehensively evaluated the molecular repercussions of methyl isocyanate (MIC) exposure on human pulmonary arterial endothelial cells (HPAE-26). We examined MIC-induced mitochondrial oxidative stress, pro-inflammatory cytokine response, oxidative DNA damage response and apoptotic index. Our results demonstrate that exposure to MIC, augment mitochondrial reactive oxygen species production, depletion in antioxidant defense enzymes, elevated pro-inflammatory cytokine response and induced endothelial cell apoptosis via affecting the balance of mitochondrial-nuclear cross talk. We herein delineate the first and direct molecular cascade of isocyanate-induced pulmonary endothelial cell dysfunction. The results of our study might portray a connective link between associated respiratory morbidities with isocyanate exposure, and indeed facilitate to discern the exposure-phenotype relationship in observed deficits of pulmonary endothelial cell function. Further, understanding of inter- and intra-cellular signaling pathways involved in isocyanate-induced endothelial damage would not only aid in biomarker identification but also provide potential new avenues to target specific therapeutic interventions.
Insights
Methyl isocyanate (MIC) exposure damages pulmonary endothelial cells by increasing oxidative stress and inflammation, leading to cell death. This study reveals the molecular mechanisms behind isocyanate-induced lung injury.
Area of Science:
- Toxicology
- Pulmonary Medicine
- Cell Biology
Background:
- Isocyanate exposure is linked to lung disease, but molecular mechanisms are unclear.
- Previous studies failed to establish a direct link between isocyanate toxicity and endothelial cell dysfunction.
- This study investigates the direct molecular effects of methyl isocyanate (MIC) on human pulmonary arterial endothelial cells.
Purpose of the Study:
- To elucidate the molecular mechanisms of methyl isocyanate (MIC)-induced pulmonary endothelial cell damage.
- To investigate the impact of MIC on oxidative stress, inflammation, DNA damage, and apoptosis in endothelial cells.
- To establish a direct cause-effect relationship between MIC exposure and endothelial cell dysfunction.
Main Methods:
- Exposure of human pulmonary arterial endothelial cells (HPAE-26) to methyl isocyanate (MIC).
- Assessment of mitochondrial oxidative stress (ROS production, antioxidant enzyme activity).
- Evaluation of pro-inflammatory cytokine response, oxidative DNA damage, and apoptotic index.
Main Results:
- MIC exposure significantly increased mitochondrial reactive oxygen species (ROS) production.
- Antioxidant defense enzymes were depleted, and pro-inflammatory cytokines were elevated.
- MIC induced endothelial cell apoptosis by disrupting mitochondrial-nuclear communication.
Conclusions:
- Methyl isocyanate directly damages pulmonary endothelial cells through oxidative stress and inflammation.
- The study identifies a molecular cascade linking isocyanate exposure to endothelial cell dysfunction and potential respiratory morbidity.
- Findings may aid in identifying biomarkers and therapeutic targets for isocyanate-induced lung injury.
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