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Prenatal inflammation enhances antenatal corticosteroid–induced fetal lung maturation
Augusto F. Schmidt, Paranthaman S. Kannan, James Bridges, Pietro Presicce, Courtney M. Jackson, Lisa A. Miller, Suhas G. Kallapur, Claire A. Chougnet, Alan H. Jobe
Augusto F. Schmidt, Paranthaman S. Kannan, James Bridges, Pietro Presicce, Courtney M. Jackson, Lisa A. Miller, Suhas G. Kallapur, Claire A. Chougnet, Alan H. Jobe
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Research Article Development Pulmonology

Prenatal inflammation enhances antenatal corticosteroid–induced fetal lung maturation

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Abstract

Respiratory complications are the major cause of morbidity and mortality among preterm infants, which is partially prevented by the administration of antenatal corticosteroids (ACS). Most very preterm infants are exposed to chorioamnionitis, but short- and long-term effects of ACS treatment in this setting are not well defined. In low-resource settings, ACS increased neonatal mortality by perhaps increasing infection. We report that treatment with low-dose ACS in the setting of inflammation induced by intraamniotic lipopolysaccharide (LPS) in rhesus macaques improves lung compliance and increases surfactant production relative to either exposure alone. RNA sequencing shows that these changes are mediated by suppression of proliferation and induction of mesenchymal cellular death via TP53. The combined exposure results in a mature-like transcriptomic profile with inhibition of extracellular matrix development by suppression of collagen genes COL1A1, COL1A2, and COL3A1 and regulators of lung development FGF9 and FGF10. ACS and inflammation also suppressed signature genes associated with proliferative mesenchymal progenitors similar to the term gestation lung. Treatment with ACS in the setting of inflammation may result in early respiratory advantage to preterm infants, but this advantage may come at a risk of abnormal extracellular matrix development, which may be associated with increased risk of chronic lung disease.

Authors

Augusto F. Schmidt, Paranthaman S. Kannan, James Bridges, Pietro Presicce, Courtney M. Jackson, Lisa A. Miller, Suhas G. Kallapur, Claire A. Chougnet, Alan H. Jobe

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Figure 8

Intraamniotic LPS and Beta-Ac interact to augment suppression of mesenchyme development in the fetal lung.

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Intraamniotic LPS and Beta-Ac interact to augment suppression of mesench...
(A) Gene set enrichment analysis of genes in cluster 8 shows that genes in this cluster, which is suppressed in the lung 5d after LPS + Beta-Ac and in term lungs, are largely associated with extracellular matrix–related proteins and processes. (B) Gene set enrichment analysis of genes in cluster 3 shows that genes in this cluster, which is suppressed in the lung 5d after LPS + Beta-Ac but not in term lungs, are associated with extracellular matrix–related proteins and developmental pathways of the fetal lung, such as smoothened signaling and fibroblast growth factor. (C) Genes associated with extracellular matrix in clusters 3 and 8. (D and E) Ingenuity pathways analysis predicted suppression of proliferation of mesenchymal cells by genes in cluster 3 (D) and extracellular matrix by genes in cluster 8 (E). n = 4 preterm controls, 3 LPS 5d, 3 LPS + Beta-Ac, and 2 term controls.

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