Background: Respiratory distress syndrome (RDS) persists as a prevalent cause of infant morbidity and mortality. We have previously demonstrated that deletion of Erk3 results in pulmonary immaturity and neonatal lethality. Using RNA sequencing, we identified corticotrophin releasing hormone (CRH) and surfactant protein B (SFTPB) as potential molecular mediators of Erk3-dependent lung maturation. In this study, we characterized the impact of antenatal glucocorticoids and postnatal surfactant on neonatal survival of Erk3 null mice.
Methods: In a double crossover design, we administered dexamethasone (dex) or saline to pregnant dams during the saccular stage of lung development, followed by postnatal surfactant or saline via inhalation intubation. Survival was recorded, and detailed lung histological analysis and staining for CRH and SFTPB protein expression were performed.
Results: Without treatment, Erk3 null pups die within 6 h of birth with reduced aerated space, impaired thinning of the alveolar septa, and abundant glycogen stores, as described in human RDS. The administration of dex and surfactant improved RDS-associated lethality of Erk3(-/-) pups and partially restored functional fetal lung maturation by accelerating the downregulation of pulmonary CRH and partially rescuing the production of SFTPB.
Conclusion: These findings emphasize that Erk3 is integral to terminal differentiation of type II cells, SFTPB production, and fetal pulmonary maturity.
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http://dx.doi.org/10.1038/pr.2014.54 | DOI Listing |
J Paediatr Child Health
January 2025
Department of Paediatric Medicine, Townsville University Hospital, Townsville, Queensland, Australia.
Objective: To study the demographic characteristics, risk factors, management details and clinical outcomes to 12 months corrected age in indigenous and non-indigenous infants with chronic neonatal lung disease in North Queensland.
Design: Retrospective cohort study of infants with chronic neonatal lung disease admitted to a tertiary neonatal intensive care unit in regional Queensland from January 2015 to December 2019.
Results: There were 139 infants with chronic neonatal lung disease and 425 controls.
Dimens Crit Care Nurs
November 2024
Background: Despite advances in medical care, the incidence and severity of bronchopulmonary dysplasia (BPD) among infants born at less than 32 weeks' gestation have not decreased. Also, BPD prediction tools have been criticized for containing too few variables, not being validated beyond their initial development, and having a lack of generalizability. To develop a comprehensive prediction tool for postnatal use, a broad evaluation of BPD risk factors is needed.
View Article and Find Full Text PDFAm J Respir Cell Mol Biol
October 2024
The Children's Hospital of Philadelphia, Pediatrics, Philadelphia, Pennsylvania, United States.
BMC Pediatr
October 2024
Department of Pediatrics, Chungnam National University Sejong Hospital, Sejong, 30099, Republic of Korea.
Background: The objective was to evaluate refractory respiratory distress syndrome (RDS) risk factors among very-low-birth-weight infants (VLBWIs).
Method: The data of VLBWIs born between January 2013 and December 2020 registered in the Korean Neonatal Network (KNN) were analyzed. Infants who died within 5 postnatal days or who were not given surfactant were excluded.
ACS Nano
November 2024
Center for Surgical Bioengineering, Department of Surgery, School of Medicine, University of California, Davis, Sacramento, California 95817, United States.
In utero gene editing with mRNA-based therapeutics has the potential to revolutionize the treatment of neurodevelopmental disorders. However, a critical bottleneck in clinical application has been the lack of mRNA delivery vehicles that can efficiently transfect cells in the brain. In this report, we demonstrate that in utero intracerebroventricular (ICV) injection of densely PEGylated lipid nanoparticles (ADP-LNPs) containing an acid-degradable PEG-lipid can safely and effectively deliver mRNA for gene editing enzymes to the fetal mouse brain, resulting in successful transfection and editing of brain cells.
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