Mitochondrial DNA-driven senescence-associated secretory phenotype promotes the development of bronchopulmonary
Yang Meng1,2, Hui Shi3, Hui Xu3
1Clinical Medical College, Yangzhou University, Yangzhou, People's Republic of China.
Insights
Mitochondrial dysfunction in bronchopulmonary dysplasia (BPD) leads to DNA release and activates the cGAS-STING pathway, driving the senescence-associated secretory phenotype (SASP). Targeting this pathway may treat BPD.
Area of Science:
- Neonatal research
- Cellular biology
- Pulmonary medicine
Background:
- Bronchopulmonary dysplasia (BPD) involves impaired lung development in preterm infants.
- Cellular senescence is known in adult lung disease but its role in neonatal lung disease is unclear.
Purpose of the Study:
- Investigate the role and mechanisms of the senescence-associated secretory phenotype (SASP) in BPD.
- Identify key molecular pathways driving BPD pathogenesis.
Main Methods:
- Used targeted inhibitor treatments and rescue strategies in a BPD model.
- Analyzed SASP factor levels (e.g., IL-6, IL-1β) after hyperoxia exposure.
- Utilized confocal imaging to examine mitochondrial integrity and DNA leakage.
Main Results:
- Hyperoxia exposure significantly elevated key SASP factors, implicating them in BPD.
- Mitochondrial dysfunction, evidenced by mtDNA leakage, was a key driver of BPD.
- VDAC1 oligomerization and the cGAS-STING pathway mediated mtDNA release and SASP.
Conclusions:
- A novel molecular cascade in BPD: VDAC1 oligomerization -> mtDNA leakage -> cGAS-STING activation -> SASP.
- This pathway impacts lung epithelial cells during oxidant-induced injury.
- Targeting the cGAS-STING pathway offers potential therapeutic strategies for BPD.
Abstract:
Bronchopulmonary dysplasia (BPD) is characterized by arrested alveolar development and disrupted vascular growth in preterm infants. Although cellular senescence has been well established in age-related diseases, such as chronic lung diseases, its role in developmental lung diseases originating in the neonatal period remains largely unknown. Here, we investigated the role and underlying mechanisms of the senescence-associated secretory phenotype (SASP) in BPD using targeted inhibitor treatments and rescue strategies. Key SASP factors, including interleukin-6, interleukin-1β, matrix metalloproteinase 12, and transforming growth factor-β1, were significantly elevated after hyperoxia exposure, indicating their involvement in BPD pathogenesis. Confocal imaging revealed that hyperoxia-induced partial mitochondrial outer membrane permeabilization triggered mitochondrial DNA (mtDNA) leakage, establishing mitochondrial dysfunction as a key driver of BPD progression. Further experiments demonstrated the role of the voltage-dependent anion channel 1 (VDAC1) oligomerization and the cGAS-STING pathway in mediating mtDNA release and SASP, respectively. Collectively, these findings define a molecular cascade where VDAC1 oligomerization causes mtDNA leakage, activating cGAS-STING to drive SASP during BPD progression. Targeting the cGAS-STING pathway holds therapeutic potential for alleviating the chronic impact of BPD.NEW & NOTEWORTHY We uncovered a novel pathway in bronchopulmonary dysplasia (BPD) development, where mitochondrial dysfunction triggers mtDNA release, activating the cGAS-STING pathway and regulating the senescence-associated secretory phenotype (SASP). This cascade impacts lung epithelial cell function in oxidant-induced injury, providing new insights into BPD pathogenesis.
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