Apnea of prematurity induces short and long-term development-related transcriptional changes in the murine cerebellum

A Rodriguez-Duboc1, M Basille-Dugay2, A Debonne1,3

  • 1Univ Rouen Normandie, Inserm, U1245, Normandie Univ, F-76000, Rouen, France.

PubMed

Insights

Intermittent hypoxia (IH) during apnea of prematurity (AOP) harms the developing cerebellum. This study reveals IH disrupts cerebellar development, impacting cell proliferation, migration, and differentiation, offering insights into AOP-related deficits.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Perinatal Medicine

Background:

  • Apnea of prematurity (AOP) causes intermittent hypoxia (IH), a major cause of morbidity and mortality in preterm infants.
  • The immature human cerebellum is vulnerable to perinatal events, and AOP is linked to cerebellar dysfunction.
  • Cerebellar alterations underlying AOP-related deficits are poorly understood.

Purpose of the Study:

  • To investigate the cerebellum's role in consequences of perinatal hypoxia using a mouse model of AOP.
  • To identify specific molecular and cellular changes in the developing cerebellum due to IH.
  • To understand the developmental timeframe of cerebellar vulnerability to IH.

Main Methods:

  • Developed a mouse model simulating AOP-induced intermittent hypoxia.
  • Utilized transcriptomic analysis and real-time PCR to study gene expression in the cerebellum.
  • Examined gene expression across different developmental stages (P8) and cell types.

Main Results:

  • IH induces oxidative stress in the developing cerebellum, with gene expression changes indicating a compromised antioxidant defense.
  • A critical vulnerability window at postnatal day 8 (P8) was identified, showing the highest number of downregulated genes.
  • IH impacts key molecular pathways including cell proliferation, migration, and differentiation in the cerebellum.

Conclusions:

  • The developing cerebellum is highly sensitive to intermittent hypoxia.
  • IH disrupts cerebellar development at cellular and molecular levels, potentially explaining AOP-related deficits.
  • Findings provide insights into mechanisms of AOP and may guide future therapeutic target identification.

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