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Measuring mRNA Levels Over Time During the Yeast S. cerevisiae Hypoxic Response
Published on: August 10, 2017
Gene expression profiles in preterm infants on continuous long‑term oxygen therapy suggest reduced oxidative
Betty Kalikstad1, Hanna Göransson Kultima2, Terese Kristoffersen Andersstuen3
1University of Oslo, Institute of Clinical Medicine, Women and Children's Clinic, Rikshospitalet, 0372 Oslo, Norway.
Insights
Preterm infants experiencing hypoxia show reduced gene expression in pathways related to oxidative stress and inflammation. This molecular response reverses upon stabilization, offering insights for refining oxygen therapy strategies in neonates.
Area of Science:
- Neonatal Medicine
- Molecular Biology
- Genomics
Background:
- Preterm infants are vulnerable to inflammatory/infective diseases, often requiring drug therapy.
- Hypothesized that mRNA expression in blood may be modulated by signaling pathways during treatment.
- Investigated global gene expression changes in preterm infants' blood to identify pathways relevant to drug therapy.
Purpose of the Study:
- To explore changes in global gene expression in the blood of preterm infants.
- To identify gene expression patterns and signaling pathways potentially relevant to drug therapy.
- To understand the molecular response to hypoxia and oxygen therapy in preterm neonates.
Main Methods:
- Collected 107 longitudinal whole blood samples from 20 preterm infants.
- Measured global mRNA expression using Affymetrix Human‑Genome‑U133 Plus 2.0‑arrays.
- Utilized unsupervised clustering and differential gene expression analysis, with pathway analysis via the Database for Annotation, Visualization and Integrated Discovery (DAVID) tool.
Main Results:
- A distinct gene expression pattern was observed in 13 samples from infants undergoing continuous oxygen therapy due to severe drops in peripheral capillary saturation (<60%).
- Compared to stable samples, 5,986 significantly differentially expressed genes were identified, with 5,167 showing reduced expression during transient hypoxia.
- Mitogen‑activated protein kinase (MAPK) and nuclear factor erythroid 2‑related factor 2 (NFE2L2) antioxidant response element (ARE) target genes showed reduced expression during hypoxia, indicating suppressed oxidative stress signaling.
Conclusions:
- Oxidative stress-dependent signaling pathways are reduced during hypoxic events in preterm infants.
- The molecular response, including suppressed gene expression in key pathways, reverses upon stabilization and adequate oxygenation.
- Understanding these molecular responses can help refine therapeutic strategies, particularly oxygen therapy, for preterm neonates.
Abstract:
Preterm infants are susceptible to neonatal inflammatory/infective diseases requiring drug therapy. The present study hypothesized that mRNA expression in the blood may be modulated by signaling pathways during treatment. The current study aimed to explore changes in global gene expression in the blood from preterm infants with the objective of identifying patterns or pathways of potential relevance to drug therapy. The infants involved were selected based on maternal criteria indicating increased risk for therapeutic intervention. Global mRNA expression was measured in 107 longitudinal whole blood samples using Affymetrix Human‑Genome‑U133 Plus 2.0‑arrays; samples were obtained from 20 preterm infants. Unsupervised clustering revealed a distinct homogeneous gene expression pattern in 13 samples derived from seven infants undergoing continuous oxygen therapy. At these sampling times, all but one of the seven infants exhibited severe drops in peripheral capillary saturation levels below 60%. The infants were reoxygenated with 100% inspired oxygen concentration. The other samples (n=94) represented the infants from the cohort at time points when they did not undergo continuous oxygen therapy. Comparing these two sets of samples identified a distinct gene expression pattern of 5,986 significantly differentially expressed genes, of which 5,167 genes exhibited reduced expression levels during transient hypoxia. This expression pattern was reversed when the infants became stable, i.e., when they were not continuously oxygenated and had no events of hypoxia. To identify signaling pathways involved in gene regulation, the Database for Annotation, Visualization and Integrated Discovery online tool was used. Mitogen‑activated protein kinases, which are normally induced by oxidative stress, exhibited reduced gene expression during hypoxia. In addition, nuclear factor erythroid 2‑related factor 2‑antioxidant response element target genes involved in oxidative stress protection were also expressed at lower levels, suggesting reduced transcription of this pathway. The findings of the present study suggest that oxidative stress‑dependent signaling is reduced during hypoxia. Understanding the molecular response in preterm infants during continuous oxygenation may aid in refining therapeutic strategies for oxygen therapy.
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