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Long-term reduction in spontaneous alternations after early exposure to phenobarbital
1Department of Anatomy and Embryology, The Hebrew University-Hadassah Medical School, Box 1172, 91010 Jerusalem, Israel.
Insights
Neonatal phenobarbital (PhB) exposure significantly impairs spontaneous alternation behavior in mice, indicating hippocampal damage. Prenatal PhB exposure had minimal effects on this behavior.
Area of Science:
- Neuroscience
- Developmental Toxicology
- Behavioral Science
Background:
- Spontaneous alternation behavior is a measure of working memory and is linked to hippocampal function.
- Previous research indicated hippocampal damage following early phenobarbital (PhB) exposure.
Purpose of the Study:
- To investigate the impact of prenatal and neonatal phenobarbital (PhB) exposure on spontaneous alternation behavior in mice.
- To compare the effects of PhB administration during different developmental windows on hippocampal-dependent cognitive functions.
Main Methods:
- Mice were exposed to PhB either prenatally (via maternal ingestion) or neonatally (via direct injection).
- Spontaneous alternation behavior was assessed using a T-maze at multiple ages (22, 28, 35, and 42 days).
- A delayed spontaneous alternation test was used to further evaluate cognitive function in prenatally exposed animals.
Main Results:
- Neonatal PhB exposure led to significant reductions in spontaneous alternation across all tested ages.
- Prenatal PhB exposure resulted in statistically insignificant changes in spontaneous alternation behavior.
- A delayed alternation test revealed significant deficits in prenatally exposed mice, suggesting subtle hippocampal impairment.
Conclusions:
- Neonatal exposure to phenobarbital (PhB) causes notable deficits in spontaneous alternation behavior, likely due to more severe hippocampal damage.
- Prenatal PhB exposure has a less pronounced effect on spontaneous alternation, although subtle impairments may be detected with sensitive testing.
- The timing of PhB exposure critically influences the extent of hippocampal-related behavioral deficits.
Abstract:
Spontaneous alternation behavior is related to the integrity of the hippocampus. Our earlier studies demonstrated hippocampal deficits after early phenobarbital (PhB) exposure. In the present study, we examined spontaneous alternation of mice who had been exposed to PhB prenatally or neonatally. Prenatal PhB was administered transplacentally: pregnant females were fed 3 g PhB/kg milled food on gestation days 9-18. Neonates were treated directly with daily injections of 50 mg PhB/kg on postnatal days 2-22. The animals were tested for spontaneous alternation in a T maze at the ages of 22, 28, 35 and 42 days. The test was conducted at each age for two consecutive days. A maximum of four alternations were allowed on the first day, and one alternation on the second day. Animals treated neonatally had reductions in alternation from the control group for every age group. Looking at the mean of the four trials on the first day there was a reduction of 35% at age 22 (P < 0.001), 8% at age 28, 21% at age 35 (P < 0.05) and 36% at age 42 (P < 0.02). On the second day the respective reductions were 32, 19, 24 and 36% (P < 0.05). The differences in alternation between animals treated with PhB prenatally and the control group were too small to reach statistical significance. Subsequently a more sensitive test, delayed spontaneous alternation (30 s), was applied to an additional group of animals at age 42 which had been prenatally exposed to PhB: 31% reduction from the control group was found on day 1 (P < 0.001), and 34% on day 2 (P < 0.02). The greater differences after neonatal as opposed to prenatal administration could be related to the more extensive hippocampal damage that was found in adults after neonatal treatment.
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