Oxygen flux reduces Cux1 positive neurons and cortical growth in a gestational rodent model of growth restriction

The mammalian cerebral cortex forms in an inside-out manner, establishing deep cortical layers before superficial layers and is regulated by transcription factors which influence cell differentiation. Preterm birth interrupts the trajectory of normal neurodevelopment and adverse perinatal exposures...

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Veröffentlicht in:Annals of anatomy 2017-03, Vol.210, p.84-93
Hauptverfasser: Fletcher, Elaine, Wade, Jean, Georgala, Petrina A., Gillespie, Trudi L., Price, David J., Pilley, Elizabeth, Becher, Julie-Clare
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Sprache:eng
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Zusammenfassung:The mammalian cerebral cortex forms in an inside-out manner, establishing deep cortical layers before superficial layers and is regulated by transcription factors which influence cell differentiation. Preterm birth interrupts the trajectory of normal neurodevelopment and adverse perinatal exposures have been implicated in cortical injury. We hypothesise that growth restriction (GR) and fluctuating hyperoxia (ΔO2) impair cortical laminar development. Sprague-Dawley rats received 18% (non-restricted, NR) or 9% (growth restricted, GR) protein diet from E15-P7. Litters were reared in air or fluctuating hyperoxia (circa 10kPa) from P0 to P7. Cortical laminae were stained and measured. Neuronal subtypes were quantified using immunofluorescence for subtype-specific transcription factors (Satb2, Cux1, Ctip2, Tbr1). ΔO2 did not affect brain weight at P7 but reduced cortical thickness in both NR (p
ISSN:0940-9602
1618-0402
DOI:10.1016/j.aanat.2016.11.014