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Isolation of Pulmonary Artery Smooth Muscle Cells from Neonatal Mice
Published on: October 19, 2013
Developmental regulation of molecular signalling in fetal and neonatal diaphragm protein metabolism
1Centre for Neonatal Research and Education, The University of Western Australia, Crawley 6009, Australia. yong.song@uwa.edu.au
Insights
Preterm infants
Area of Science:
- Neonatal physiology
- Developmental biology
- Muscle biology
Background:
- Preterm infants exhibit diaphragm immaturity, leading to respiratory muscle weakness and potential need for mechanical ventilation.
- Proteolytic gene expression in the diaphragm changes dynamically during fetal and early postnatal development.
Purpose of the Study:
- To investigate the molecular mechanisms regulating proteolytic pathways in the developing lamb diaphragm.
- To identify triggers for changes in diaphragm protein metabolism during in utero and early postnatal life.
Main Methods:
- Analysis of diaphragm tissue from fetal and newborn lambs (75-200 days postconceptional age).
- Measurement of gene expression for key anabolic and catabolic factors (IGF-1, TNF-α, myostatin).
- Assessment of FOXO1, NF-κB pathway activation, and reactive oxygen species (ROS) production.
Main Results:
- Anabolic (IGF-1) and catabolic (TNF-α, myostatin) gene expression decreased in utero, with postnatal increases (except myostatin).
- Rapid activation of FOXO1 and NF-κB pathways occurred 24 hours after birth.
- Diaphragm ROS production significantly increased postnatally, correlating with antioxidant gene expression.
Conclusions:
- Decreasing anabolic/catabolic factors in late gestation suggest reduced protein metabolism during diaphragm maturation.
- Postnatal ROS accumulation and subsequent FOXO/NF-κB activation are key events in diaphragm adaptation to breathing.
- Further research is needed to understand the implications of these postnatal changes for diaphragm function.
Abstract:
Structural and functional immaturity of the preterm diaphragm predisposes the preterm baby to respiratory muscle weakness and consequent impaired efficiency of spontaneous respiration, potentially necessitating mechanical respiratory support. The ontogeny of several proteolytic genes (calpain, caspase-3, MAFbx and MuRF-1) changes dynamically with gestational and early postnatal development. We aimed to define the molecular signal cascades and triggers responsible for the dynamic changes in the proteolytic pathways during in utero and early postnatal development. Costal diaphragm was obtained immediately following euthanasia of fetal and newborn lambs from 75 to 200 days postconceptional age (term = 150 days). Gene expression of insulin-like growth factor 1 (IGF-1), tumour necrosis factor α (TNF-α) and myostatin decreased steadily in utero from 75 to 145 days (P < 0.05) and the transcripts increased again after birth except of myostatin. Rapid activation of the fork-head transcriptional factors of the O class (FOXO1) and nuclear factor kappa-light-chain-enhancer of activated B cells (NF-κB) pathways was observed at 24 h of postnatal age. Diaphragm reactive oxygen species (ROS) production increased over 29-fold at 24 h postnatal age, compared with the 145 days fetus (P < 0.01). Local (diaphragmatic) ROS accumulation occurred earlier and was more predominant than systemic (plasma) ROS. There were positive correlations between signalling transduction molecules (FOXO1 and NF-κB) and antioxidant gene expression (superoxide dismutase and glutathione peroxidase 1). We conclude that anabolic (IGF-1) and catabolic (TNF-α and myostatin) factors have a similar developmental pattern with a decreasing trend toward full term. This may reflect in utero integration of cellular events into low protein metabolism as the diaphragm matures in late gestation. On initiation of spontaneous breathing, ROS accumulated and potentially activated cascade of FOXO and NF-κB signal transduction. The finding provides new insights into developmental regulation of protein metabolism within development. The implication of these postnatal events for diaphragm adaptation to the ex utero environment needs further investigation.
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