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Intrauterine growth restriction followed by oxygen support uniquely interferes with genetic regulators of myelination. | LitMetric

AI Article Synopsis

  • Intrauterine growth restriction (IUGR) combined with oxygen exposure negatively impacts brain development, increasing the risk of neurodevelopmental disabilities such as cerebral palsy.
  • Research using mouse models revealed that both conditions alter gene expression, with IUGR/hyperoxia leading to significant downregulation of myelination-related genes.
  • The study highlights specific gene regulators involved in these changes, aiming to identify therapeutic targets and improve outcomes for infants affected by IUGR and oxygen exposure.

Article Abstract

Intrauterine growth restriction (IUGR) and oxygen exposure in isolation and combination adversely affect the developing brain, putting infants at risk for neurodevelopmental disability including cerebral palsy. Rodent models of IUGR and postnatal hyperoxia have demonstrated oligodendroglial injury with subsequent white matter injury (WMI) and motor dysfunction. Here we investigate transcriptomic dysregulation in IUGR with and without hyperoxia exposure to account for the abnormal brain structure and function previously documented. We performed RNA sequencing and analysis using a mouse model of IUGR and found that IUGR, hyperoxia, and the combination of IUGR with hyperoxia (IUGR/hyperoxia) produced distinct changes in gene expression. IUGR in isolation demonstrated the fewest differentially expressed genes compared to control. In contrast, we detected several gene alterations in IUGR/hyperoxia; genes involved in myelination were strikingly downregulated. We also identified changes to specific regulators including TCF7L2, BDNF, SOX2, and DGCR8, through Ingenuity Pathway Analysis, that may contribute to impaired myelination in IUGR/hyperoxia. Our findings show that IUGR with hyperoxia induces unique transcriptional changes in the developing brain. These indicate mechanisms for increased risk for WMI in IUGR infants exposed to oxygen and suggest potential therapeutic targets to improve motor outcomes.This study demonstrates that perinatal exposures of IUGR and/or postnatal hyperoxia result in distinct transcriptomic changes in the developing brain. In particular, we found that genes involved in normal developmental myelination, myelin maintenance, and remyelination were most dysregulated when IUGR was combined with hyperoxia. Understanding how multiple risk factors lead to WMI is the first step in developing future therapeutic interventions. Additionally, because oxygen exposure is often unavoidable after birth, an understanding of gene perturbations in this setting will increase our awareness of the need for tight control of oxygen use to minimize future motor disability.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8266217PMC
http://dx.doi.org/10.1523/ENEURO.0263-20.2021DOI Listing

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