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Adaptation of the Oxygen Sensing System during Lung Development
Karin M Kirschner1, Simon Kelterborn1, Herrmann Stehr2
1Institute of Translational Physiology, Charité-Universitätsmedizin Berlin, Corporate Member of Freie Universität Berlin and Humboldt-Universität zu Berlin, 10117 Berlin, Germany.
Insights
The developing lung
Area of Science:
- Molecular Biology
- Developmental Biology
- Neonatal Physiology
Background:
- Oxygen supply drastically changes after birth, impacting premature infants.
- The developing lung's oxygen sensing system adapts to postnatal ventilation.
- Hypoxia-inducible factor (HIF)-regulated genes (HRGs) are crucial targets.
Purpose of the Study:
- To detail the adaptation of the oxygen sensing system in the developing lung.
- To investigate the role of HIF-regulated genes during lung maturation.
- To understand oxygen sensing for preventing prematurity-associated diseases.
Main Methods:
- Integrated data from qPCR, immunoblotting, in situ hybridization, and single-cell RNA sequencing.
- Utilized ex vivo lung organ cultures and in vivo mouse models.
- Analyzed HIF1α protein stability and expression of HIF-PHD system components.
Main Results:
- HIF1α protein destabilized post-ventilation, but HRG expression changes were limited.
- Modified HIF-PHD system composition observed: decreased Phd3, increased Hif2a, and P0-specific Ipas peak.
- Hif1a-Phd1 axis identified as key regulator, complemented by Hif3a-Phd3 during gestation.
Conclusions:
- The lung's oxygen sensing system undergoes significant adaptation during development.
- HIF pathway components show dynamic changes, with specific axes dominating different developmental phases.
- Understanding these adaptations is vital for addressing prematurity-related lung diseases like bronchopulmonary dysplasia.
Abstract:
During gestation, the most drastic change in oxygen supply occurs with the onset of ventilation after birth. As the too early exposure of premature infants to high arterial oxygen pressure leads to characteristic diseases, we studied the adaptation of the oxygen sensing system and its targets, the hypoxia-inducible factor- (HIF-) regulated genes (HRGs) in the developing lung. We draw a detailed picture of the oxygen sensing system by integrating information from qPCR, immunoblotting, in situ hybridization, and single-cell RNA sequencing data in ex vivo and in vivo models. HIF1α protein was completely destabilized with the onset of pulmonary ventilation, but did not coincide with expression changes in bona fide HRGs. We observed a modified composition of the HIF-PHD system from intrauterine to neonatal phases: Phd3 was significantly decreased, while Hif2a showed a strong increase and the Hif3a isoform Ipas exclusively peaked at P0. Colocalization studies point to the Hif1a-Phd1 axis as the main regulator of the HIF-PHD system in mouse lung development, complemented by the Hif3a-Phd3 axis during gestation. Hif3a isoform expression showed a stepwise adaptation during the periods of saccular and alveolar differentiation. With a strong hypoxic stimulus, lung ex vivo organ cultures displayed a functioning HIF system at every developmental stage. Approaches with systemic hypoxia or roxadustat treatment revealed only a limited in vivo response of HRGs. Understanding the interplay of the oxygen sensing system components during the transition from saccular to alveolar phases of lung development might help to counteract prematurity-associated diseases like bronchopulmonary dysplasia.
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