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Updated: Jan 28, 2026

Transuterine Fetal Tracheal Occlusion Model in Mice
Published on: February 5, 2021
Heterogeneous Pulmonary Response After Tracheal Occlusion: Clues to Fetal Lung Growth
Evgenia Dobrinskikh1, Saif I Al-Juboori2, Uladzimir Shabeka2
1Department of Medicine, University of Colorado School of Medicine, Aurora, Colorado.
Insights
Tracheal occlusion (TO) in fetal lungs causes varied airspace and metabolic changes. Day 4 lungs show enlarged airspaces and a shift to glycolysis, suggesting potential markers for successful congenital diaphragmatic hernia (CDH) treatment.
Area of Science:
- Neonatal care
- Fetal lung development
- Congenital diaphragmatic hernia (CDH) research
Background:
- Congenital diaphragmatic hernia (CDH) treatment outcomes in infants vary.
- Tracheal occlusion (TO) is a neonatal intervention for severe CDH.
- Understanding lung changes after TO is critical for improving infant care.
Purpose of the Study:
- To investigate heterogeneous airspace morphometry in fetal lungs after TO.
- To analyze metabolic landscape alterations in fetal lungs post-TO.
- To correlate lung changes with clinical outcomes in CDH infants.
Main Methods:
- Fetal lungs examined on days 1 and 4 post-TO.
- Mass spectrometry-based metabolomics and fluorescence lifetime imaging microscopy (FLIM) used.
- Airspace number and tissue-to-airspace ratio (TAR) quantified.
Main Results:
- Two distinct morphometric areas identified: small airspaces (day 1) and enlarged airspaces (day 4).
- Metabolomics revealed upregulated glycolysis and suppressed TCA cycle by day 4.
- FLIM showed heterogeneous metabolic zones, including increased oxidative phosphorylation and a shift to glycolysis with decreased lipid-surfactant signals.
Conclusions:
- Fetal lungs exhibit temporal morphometric and metabolic changes after TO.
- Day 1 lungs show increased oxidative phosphorylation; Day 4 lungs shift to glycolysis.
- Optimal TO responders may have larger lungs with small airspaces and normal surfactant.
Background:
Understanding inconsistent clinical outcomes in infants with severe congenital diaphragmatic hernia (CDH) after tracheal occlusion (TO) is a crucial step for advancing neonatal care. The objective of this study is to explore the heterogeneous airspace morphometry and the metabolic landscape changes in fetal lungs after TO.
Methods:
Fetal lungs on days 1 and 4 after TO were examined using mass spectrometry-based metabolomics, fluorescence lifetime imaging microscopy (FLIM), the number of airspaces, and tissue-to-airspace ratio (TAR).
Results:
Two morphometric areas were identified in TO lungs compared with controls (more small airspaces at day 1 and a higher number of enlarged airspaces at day 4). Global metabolomics analysis revealed a significant upregulation of glycolysis and a suppression of the tricarboxylic acid cycle in day 4 TO lungs compared with day 1 TO lungs. In addition, there was a significant increase in polyamines involved in cell growth and proliferation. Locally, FLIM analysis on day 1 TO lungs demonstrated two types of heterogeneous zones-similar to control and with increased oxidative phosphorylation. FLIM on day 4 TO lungs demonstrated appearance of zones with enlarged airspaces and a metabolic shift toward glycolysis, accompanied by a decrease in the FLIM "lipid-surfactant" signal.
Conclusions:
In normal fetal lungs, we report a novel temporal pattern of varied morphometric and metabolic changes. Initially, there is formation of zones with small airspaces, followed by airspace enlargement over time. Metabolically day 1 TO lungs have zones with increased oxidative phosphorylation, whereas day 4 TO lungs have a shift toward glycolysis in the enlarged airspaces. Based on our observations, we speculate that the "best responders" to tracheal occlusion should have bigger lungs with small airspaces and normal surfactant production.
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