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Effect of Montelukast on Bronchopulmonary Dysplasia (BPD) and Related Mechanisms
Xin Chen1, Xiaoqian Zhang2, Jiahua Pan3
1Department of Pediatrics, The First Hospital Affiliated to Bengbu Medical College, Bengbu, Anhui, China (mainland).
Insights
Montelukast treatment alleviates bronchopulmonary dysplasia (BPD) in mice by reducing inflammation and oxidative stress. This study clarifies the protective molecular mechanisms of montelukast in BPD development.
Area of Science:
- Pulmonary Medicine
- Pharmacology
- Neonatology
Background:
- Bronchopulmonary dysplasia (BPD) is a prevalent chronic lung disease in preterm infants.
- Montelukast, a cysteinyl leukotriene receptor antagonist, shows protective effects in various diseases.
- The precise molecular mechanisms of montelukast in BPD remain unclear.
Purpose of the Study:
- To investigate the therapeutic effects and underlying molecular mechanisms of montelukast in a mouse model of BPD.
- To evaluate montelukast's impact on inflammation, oxidative stress, and apoptosis in lung tissues and cells.
Main Methods:
- Established mouse and in vitro hyperoxia-induced lung injury models.
- Administered montelukast and assessed lung morphometry (MLI, RAC, LW/BW ratio).
- Quantified pro-inflammatory cytokines, oxidative stress markers (SOD, MDA), cell viability, and apoptosis.
Main Results:
- Montelukast treatment improved lung structure in BPD mice (increased RAC, decreased MLI and LW/BW ratio).
- Reduced levels of TNF-α, IL-6, and IL-1β, and decreased oxidative stress markers (MDA) were observed.
- Montelukast enhanced cell viability and reduced apoptosis in hyperoxia-exposed lung cells, decreasing p-p65 levels.
Conclusions:
- Montelukast demonstrates protective effects against hyperoxia-induced BPD in mice.
- The mechanism involves the inhibition of inflammation, oxidative stress, and lung cell apoptosis.
- Montelukast offers a potential therapeutic strategy for BPD.
Abstract:
BACKGROUND Bronchopulmonary dysplasia (BPD) is a chronic lung disease common in preterm infants. Montelukast, an effective cysteinyl leukotriene (cysLT) receptor antagonist, has a variety of pharmacological effects and has protective effects against a variety of diseases. Currently, the efficacy and safety of montelukast sodium in treating BPD has been revealed, however, the precise molecular mechanism of the effect of montelukast on BPD development remain largely unclear. Therefore, this study aimed to investigate the effect and mechanism of montelukast on BPD in vivo and in vitro. MATERIAL AND METHODS A mouse BPD model and hyperoxia-induced lung cell injury model were established and treated with montelukast. Then mean linear intercept (MLI), radial alveolar count (RAC), lung weight/body weight (LW/BW) ratio, pro-inflammatory factors, and oxidative stress-related factors in lung tissues were determined. Cell viability and apoptosis were detected using MTT assay and flow cytometer respectively. RESULTS The results showed that montelukast treatment relieved mouse BPD, evidenced by increased RAC and decreased MLI and LW/BW ratios. We also found that montelukast treatment reduced pro-inflammatory factors (TNF-alpha, IL-6, and IL-1ß) production, enhanced superoxide dismutase (SOD) activity, and reduced malondialdehyde (MDA) content in the lung tissues of BPD mice. Besides, montelukast eliminated the reduced cell viability and enhanced cell apoptosis induced by hyperoxia exposure in vitro. Moreover, the upregulated pro-inflammatory factors production and p-p65 protein level in lung cells caused by hyperoxia were decreased by montelukast treatment. CONCLUSIONS Montelukast protected against mouse BPD induced by hyperoxia through inhibiting inflammation, oxidative stress, and lung cell apoptosis.
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