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Published on: May 12, 2015
Choline availability alters embryonic development of the hippocampus and septum in the rat
C D Albright1, A Y Tsai, C B Friedrich
1Department of Nutrition, CB #7400, McGavran-Greenberg Building, School of Public Health and School of Medicine, University of North Carolina, Chapel Hill, NC 27599-7400, USA.
Insights
Maternal choline intake impacts fetal brain development, affecting neuronal progenitor cell proliferation, migration, and apoptosis. Choline deficiency during pregnancy alters neurogenesis in key brain regions, with lasting effects on offspring behavior.
Area of Science:
- Neuroscience
- Developmental Biology
- Nutritional Science
Background:
- Maternal diet during pregnancy significantly influences fetal brain development and long-term offspring behavior.
- Choline is a critical nutrient for fetal neurodevelopment, impacting brain biochemistry and function.
Purpose of the Study:
- To investigate the effects of dietary choline availability on neuronal progenitor cell proliferation, migration, and apoptosis in the developing fetal brain.
- To analyze choline's impact on specific brain regions, including the hippocampus and septum, at different embryonic stages.
Main Methods:
- Timed-pregnant rats were fed diets with varying choline levels from embryonic day 12 for 6 days.
- Fetal brain sections were collected on embryonic days 18 and 20 for analysis.
- Methods included bromodeoxyuridine (BrdU) labeling and computer-assisted image analysis to assess cell proliferation, migration, and apoptosis.
Main Results:
- Choline deficiency (CD) decreased mitosis in the neuroepithelium and increased apoptosis in the hippocampus's dentate gyrus.
- CD altered the distribution and migration of precursor cells in the fetal hippocampus and reduced migration into the lateral septum.
- Increased expression of the neuronal differentiation marker TOAD-64 was observed in the hippocampus of choline-deficient fetuses.
Conclusions:
- Dietary choline availability critically regulates the timing of neurogenesis, including cell genesis, migration, and differentiation commitment.
- These alterations in progenitor cell dynamics occur in brain regions vital for learning and memory.
- The findings highlight the sensitivity of fetal brain development to maternal choline status and its potential long-term consequences.
Abstract:
Choline availability in the diet during pregnancy alters fetal brain biochemistry with resulting behavioral changes that persist throughout the lifetime of the offspring. In the present study, the effects of dietary choline on cell proliferation, migration, and apoptosis in neuronal progenitor cells in the hippocampus and septum were analyzed in fetal brains at different stages of embryonic development. Timed-pregnant rats on day E12 were fed AIN-76 diet with varying levels of dietary choline for 6 days, and, on days E18 or E20, fetal brain sections were collected. We found that choline deficiency (CD) significantly decreased the rate of mitosis in the neuroepithelium adjacent to the hippocampus. An increased number of apoptotic cells were found in the region of the dentate gyrus of CD hippocampus compared to controls (5.5+/-0.7 vs. 1.9+/-0.3 apoptotic cells per section; p<0.01). Using a combination of bromodeoxyuridine (BrdU) labeling and an unbiased computer-assisted image analysis method, we found that modulation of dietary choline availability changed the distribution and migration of precursor cells born on E16 in the fimbria, primordial dentate gyrus, and Ammon's horn of the fetal hippocampus. CD also decreased the migration of newly born cells from the neuroepithelium into the lateral septum, thus indicating that the sensitivity of fetal brain to choline availability is not restricted to the hippocampus. We found an increase in the expression of TOAD-64 protein, an early neuronal differentiation marker, in the hippocampus of CD day E18 fetal brains compared to controls. These results show that dietary choline availability alters the timing of the genesis, migration, and commitment to differentiation of progenitor neuronal-type cells in fetal brain hippocampal regions known to be associated with learning and memory processes in adult brain.
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