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Impact of High-Dose Caffeine on the Preterm Ovine Cerebrum and Cerebellum
Anzari Atik1, Robert De Matteo1, Meghan Boomgardt2
1Department of Anatomy and Developmental Biology, Monash University, Clayton, VIC, Australia.
Insights
High-dose caffeine, used to treat apnea of prematurity, altered developing ovine brains. This study found short-term changes in neuronal and glial development in the cerebral cortex and cerebellum, necessitating further investigation into long-term effects.
Area of Science:
- Neuroscience
- Developmental Biology
- Pharmacology
Background:
- Caffeine is a primary treatment for apnea of prematurity in infants.
- Standard caffeine doses may be insufficient, leading to the use of higher doses.
- The impact of high-dose caffeine on the developing brain is not well understood.
Purpose of the Study:
- To investigate the effects of high-dose caffeine administration on the immature ovine brain.
- To assess histological and immunohistochemical changes in specific brain regions.
Main Methods:
- Pregnant sheep received high-dose caffeine (25 mg/kg loading, 20 mg/kg maintenance) or saline from 105 to 118 days of gestation.
- Cerebral cortex, striatum, and cerebellum were analyzed at 119 days of gestation.
- Histological and immunohistochemical techniques were employed.
Main Results:
- Caffeine-exposed fetuses showed increased density of specific projection neurons, astrocytes, and oligodendrocytes in the cerebral cortex.
- A decrease in certain cortical projection neurons was observed in caffeine-exposed fetuses.
- Reduced Purkinje cell body area was noted in the cerebellum of caffeine-exposed fetuses.
Conclusions:
- Short-term exposure to high-dose caffeine impacts neuronal and glial development in the developing ovine brain.
- Specific alterations were observed in the cerebral cortex and cerebellum.
- Long-term structural and functional consequences require further investigation.
Abstract:
Caffeine is one of the few treatments available for infants with apnea of prematurity. As the recommended dosing regimen is not always sufficient to prevent apnea, higher doses may be prescribed. However, little is currently known about the impact of high-dose caffeine on the developing brain; thus, our aim was to investigate the consequences of a high-dose regimen on the immature ovine brain. High-dose caffeine (25 mg/kg caffeine base loading dose; 20 mg/kg daily maintenance dose; n = 9) or saline (n = 8) was administered to pregnant sheep from 105 to 118 days of gestation (DG; term = 147 days); this is broadly equivalent to 28-33 weeks of human gestation. At 119DG, the cerebral cortex, striatum, and cerebellum were assessed histologically and by immunohistochemistry. Compared with controls, caffeine-exposed fetuses showed (i) an increase in the density of Ctip2-positive layers V-VI projection neurons (p = 0.02), Tbr1-positive layers V-VI projection neurons (p < 0.0001), astrocytes (p = 0.03), and oligodendrocytes (p = 0.02) in the cerebral cortex, (ii) a decrease in the density of Cux1-positive layers II-IV projection neurons (p = 0.01) in the cerebral cortex, and (iii) a reduction in the area of Purkinje cell bodies in the cerebellum (p = 0.03). Comparing high-dose caffeine-exposed fetuses with controls, there was no difference (p > 0.05) in: (i) the volume of the cerebral cortex or striatum, (ii) the density of neurons (total and output projection neurons) in the striatum, (iii) dendritic spine density of layer V pyramidal cells, (iv) the density of cortical GABAergic interneurons, microglia, mature oligodendrocytes or proliferating cells, (v) total cerebellar area or dimensions of cerebellar layers, or (vi) the density of cerebellar white matter microglia, astrocytes, oligodendrocytes, or myelin. Daily exposure of the developing brain to high-dose caffeine affects some aspects of neuronal and glial development in the cerebral cortex and cerebellum in the short-term; the long-term structural and functional consequences of these alterations need to be investigated.
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