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Moderate Prenatal Alcohol Exposure and Quantification of Social Behavior in Adult Rats
Published on: December 14, 2014
Intravenous Prenatal Nicotine Exposure Alters METH-Induced Hyperactivity, Conditioned Hyperactivity, and BDNF in
Ryan T Lacy1, Russell W Brown, Amanda J Morgan
1Behavioral Neuroscience Program, Department of Psychology, University of South Carolina, Columbia, S.C., USA.
Insights
Maternal prenatal nicotine exposure in rats leads to long-term changes in activity and increased sensitivity to methamphetamine. This prenatal nicotine exposure enhances drug-related contextual learning and alters brain-derived neurotrophic factor (BDNF) levels, suggesting increased vulnerability to drug abuse.
Area of Science:
- Neuroscience
- Developmental Neuroscience
- Behavioral Pharmacology
Background:
- Maternal smoking during pregnancy is prevalent and linked to adverse neurodevelopmental outcomes in offspring.
- Prenatal nicotine exposure (PN) in animal models affects the mesocorticolimbic system, crucial for goal-directed behavior and drug abuse.
- Brain-derived neurotrophic factor (BDNF) plays a key role in neural plasticity and drug abuse vulnerability.
Purpose of the Study:
- To investigate the long-term effects of intravenous prenatal nicotine (PN) exposure on methamphetamine (METH)-induced locomotor sensitization in adult rat offspring.
- To determine if PN and/or METH exposure alters BDNF protein levels in key mesocorticolimbic regions (nucleus accumbens, dorsal striatum, prefrontal cortex).
Main Methods:
- Pregnant rats received intravenous nicotine or saline. Offspring were tested in adulthood for locomotor activity and METH-induced sensitization.
- Locomotor activity was measured after acute and repeated METH injections, and following a drug-free period to assess sensitization expression.
- BDNF protein levels in brain tissue were quantified using Western blotting.
Main Results:
- PN exposure did not alter the initiation or expression of METH-induced locomotor sensitization but did affect habituation and baseline activity.
- PN rats showed enhanced locomotor responses to acute and repeated METH injections and a greater conditioned hyperactivity response.
- PN and METH exposure altered BDNF protein levels in the nucleus accumbens, dorsal striatum, and prefrontal cortex, with significant correlations between BDNF levels and conditioned hyperactivity.
Conclusions:
- Low-dose prenatal nicotine exposure induces persistent, long-term changes in offspring activity and sensitivity to METH's locomotor effects.
- PN exposure enhances METH-induced contextual conditioning, suggesting increased susceptibility to learn drug-associated cues.
- Alterations in mesocorticolimbic BDNF protein levels following PN exposure support the hypothesis that maternal smoking contributes to adult drug abuse vulnerability through persistent neuroplastic changes.
Abstract:
In the USA, approximately 15% of women smoke tobacco cigarettes during pregnancy. In utero tobacco smoke exposure produces somatic growth deficits like intrauterine growth restriction and low birth weight in offspring, but it can also negatively influence neurodevelopmental outcomes in later stages of life, such as an increased incidence of obesity and drug abuse. Animal models demonstrate that prenatal nicotine (PN) alters the development of the mesocorticolimbic system, which is important for organizing goal-directed behavior. In the present study, we determined whether intravenous (IV) PN altered the initiation and/or expression of methamphetamine (METH)-induced locomotor sensitization as a measure of mesocorticolimbic function in adult rat offspring. We also determined whether PN and/or METH exposure altered protein levels of BDNF (brain-derived neurotrophic factor) in the nucleus accumbens, the dorsal striatum, and the prefrontal cortex of adult offspring. BDNF was of interest because of its role in the development and maintenance of the mesocorticolimbic pathway and its ability to modulate neural processes that contribute to drug abuse, such as sensitization of the dopamine system. Dams were injected with IV nicotine (0.05 mg/kg/injection) or saline, 3×/day on gestational days 8-21. Testing was conducted when offspring reached adulthood (around postnatal day 90). Following 3 once daily habituation sessions the animals received a saline injection and baseline locomotor activity was measured. PN and prenatal saline (PS)-exposed offspring then received 10 once daily injections of METH (0.3 mg/kg) to induce locomotor sensitization. The animals received a METH injection (0.3 mg/kg) to assess the expression of sensitization following a 14-day period of no injections. A day later, all animals were injected with saline and conditioned hyperactivity was assessed. Brain tissue was harvested 24 h later. PN animals habituated more slowly to the activity chambers compared to PS controls. PN rats treated with METH showed significant enhancement of locomotor behavior compared to PS rats following acute and repeated injections; however, PN did not produce differential initiation or expression of behavioral sensitization. METH produced conditioned hyperactivity, and PN rats exhibited a greater conditioned response of hyperactivity relative to controls. PN and METH exposure produced changes in BDNF protein levels in all three regions, and complex interactions were observed between these two factors. Logistic regression revealed that BDNF protein levels, throughout the mesocorticolimbic system, significantly predicted the difference in the conditioned hyperactive response of the animals: both correlations were significant, but the predicted relationship between BDNF and context-elicited activity was stronger in the PN (r = 0.67) compared to the PS rats (r = 0.42). These findings indicate that low-dose PN exposure produces long-term changes in activity and enhanced sensitivity to the locomotor effects of METH. The enhanced METH-induced contextual conditioning shown by the PN animals suggests that offspring of in utero tobacco smoke exposure have greater susceptibility to learn about drug-related conditional stimuli, such as the context. The PN-induced alterations in mesocorticolimbic BDNF protein lend further support for the hypothesis that maternal smoking during pregnancy produces alterations in neuronal plasticity that contribute to drug abuse vulnerability. The current findings demonstrate that these changes are persistent into adulthood.

