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Long-term Behavioral and Reproductive Consequences of Embryonic Exposure to Low-dose Toxicants
Published on: March 6, 2018
Revealing Behavioral Learning Deficit Phenotypes Subsequent to In Utero Exposure to Benzo(a)pyrene
Monique M McCallister1, Zhu Li1, Tongwen Zhang2
1*Department of Neuroscience and Pharmacology, Center for Molecular and Behavioral Neuroscience, Environmental-Health Disparities and Medicine, Meharry Medical College, Nashville, Tennessee 37208;
Insights
Prenatal exposure to Benzo(a)pyrene (B(a)P) causes lasting behavioral deficits in offspring. Rats exposed to B(a)P in utero showed impaired learning and altered brain protein expression later in life.
Area of Science:
- Neuroscience
- Developmental Toxicology
- Behavioral Science
Background:
- Benzo(a)pyrene (B(a)P) is a common environmental pollutant.
- In utero exposure to B(a)P can impact neurodevelopment.
- Understanding the long-term behavioral consequences of prenatal B(a)P exposure is crucial.
Purpose of the Study:
- To investigate the behavioral neurotoxicity of in utero Benzo(a)pyrene (B(a)P) exposure in pre-adolescent offspring.
- To characterize dose-dependent effects and long-term behavioral deficits.
- To examine the expression of activity-related cytoskeletal-associated protein (Arc) as a marker of neural plasticity.
Main Methods:
- Timed-pregnant Long Evans Hooded rats were exposed to varying doses of B(a)P or vehicle on gestational days 14-17.
- Offspring were assessed for B(a)P metabolite levels in plasma and brain tissue.
- Spatial discrimination-reversal learning tasks were used to evaluate behavioral neurotoxicity in offspring at postnatal days 40-60.
Main Results:
- B(a)P metabolite concentrations were dose-dependent and showed time-dependent elimination.
- Offspring exposed to higher doses of B(a)P (600 and 1200 µg/kg) exhibited perseveration on the first discrimination reversal task.
- Increased expression of the activity-related cytoskeletal-associated protein (Arc) was observed in B(a)P-exposed offspring.
Conclusions:
- In utero exposure to Benzo(a)pyrene during critical neurodevelopmental periods induces persistent behavioral deficits.
- These deficits manifest as impaired cognitive flexibility, specifically in reversal learning.
- Altered Arc protein expression suggests disruptions in experience-dependent neural plasticity following prenatal B(a)P exposure.
Abstract:
To characterize behavioral deficits in pre-adolescent offspring exposed in utero to Benzo(a)pyrene [B(a)P], timed-pregnant Long Evans Hooded rats were treated with B(a)P (150, 300, 600, and 1200 µg/kg BW) or peanut oil (vehicle) on E14, 15, 16, and 17. Following birth, during the pre-weaning period, B(a)P metabolites were examined in plasma and whole brain or cerebral cortex from exposed and control offspring. Tissue concentrations of B(a)P metabolites were (1) dose-dependent and (2) followed a time-dependence for elimination with ∼60% reduction by PND5 in the 1200 µg/kg BW experimental group. Spatial discrimination-reversal learning was utilized to evaluate potential behavioral neurotoxicity in P40-P60 offspring. Late-adolescent offspring exposed in utero to 600 and 1200 µg/kg BW were indistinguishable from their control counterparts for ability to acquire an original discrimination (OD) and reach criterion. However, a dose-dependent effect of in utero B(a)P-exposure was evident upon a discrimination reversal as exposed offspring perseverated on the previously correct response. This newly characterized behavioral deficit phenotype for the first reversal was not apparent in either the (1) OD or (2) subsequent reversal sessions relative to the respective control offspring. Furthermore, the expression of activity related-cytoskeletal-associated protein (Arc), an experience-dependent cortical protein marker known to be up-regulated in response to acquisition of a novel behavior, was greater in B(a)P-exposed offspring included in the spatial discrimination cohort versus home cage controls. Collectively, these findings support the hypothesis that in utero exposure to B(a)P during critical windows of development representing peak periods of neurogenesis results in behavioral deficits in later life.
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