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Effects of maternal hyperhomocysteinemia induced by high methionine diet on the learning and memory performance in
Giyasettin Baydas1, Sema T Koz, Mehmet Tuzcu
1Department of Physiology, Faculty of Medicine, Firat University, 23119 Elazig, Turkey. baydas@hotmail.com
Insights
Maternal hyperhomocysteinemia in rats delays fetal brain maturation and alters neural cell adhesion molecule expression. This leads to significant learning deficits in offspring, impacting cognitive functions.
Area of Science:
- Neuroscience
- Developmental Biology
- Toxicology
Background:
- Hyperhomocysteinemia's effects are known in adults, but its impact on fetal brain development and offspring cognition is unclear.
- Maternal hyperhomocysteinemia may negatively affect fetal brain development and subsequent cognitive functions in offspring.
Purpose of the Study:
- To investigate the effects of maternal hyperhomocysteinemia on fetal brain development.
- To assess the impact on the learning and memory behavior of offspring.
Main Methods:
- Pregnant rats were administered methionine to induce hyperhomocysteinemia from gestational day 0.
- Levels of glial fibrillary acidic protein, S100B protein, and neural cell adhesion molecule were measured in pup brain tissue.
- Offspring cognitive performance was evaluated using the Morris water maze test.
Main Results:
- Reduced expression of glial fibrillary acidic protein and S100B protein in pups exposed to maternal hyperhomocysteinemia suggests delayed brain maturation.
- Altered expression patterns of neural cell adhesion molecule were observed.
- Offspring exhibited impaired learning and memory performance.
Conclusions:
- Maternal hyperhomocysteinemia delays fetal brain maturation.
- Altered neural cell adhesion molecule expression contributes to cognitive impairments in offspring.
- Hyperhomocysteinemia during pregnancy poses a risk to offspring neurodevelopment and cognitive function.
Abstract:
In this study, we suggest that chronic maternal hyperhomocysteinemia results in learning deficits in the offspring due to delayed brain maturation and altered expression pattern of neural cell adhesion molecule. Although the deleterious effects of hyperhomocysteinemia were extensively investigated in the adults, there is no clear evidence suggesting its action on the developing fetal rat brain and cognitive functions of the offspring. Therefore, in the present work we aimed to investigate effects of maternal hyperhomocysteinemia on the fetal brain development and on the behavior of the offspring. A group of pregnant rats received daily methionine (1 g/kg body weight) dissolved in drinking water to induce maternal hyperhomocysteinemia, starting in the beginning of gestational day 0. The levels of glial fibrillary acidic protein, S100B protein, and neural cell adhesion molecule were determined in the tissue samples from the pups. Learning and memory performances of the young-adult offsprings were tested using Morris water maze test. There were significant reductions in the expressions of glial fibrillary acidic protein and S100B protein in the brains of maternally hyperhomocysteinemic pups on postnatal day 1, suggesting that hyperhomocysteinemia delays brain maturation. In conclusion, maternal hyperhomocysteinemia changes the expression pattern of neural cell adhesion molecule and therefore leads to an impairment in the learning performance of the offspring.
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