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Neurodevelopmental Reflex Testing in Neonatal Rat Pups
Published on: April 24, 2017
Effects of prenatal protein malnutrition and neonatal stress on CNS responsiveness
P Kehoe1, K Mallinson, J Bronzino
1Neuroscience Program, Trinity College, Hartford, CT, USA. pkehoe@uci.edu
Insights
Prenatal protein malnutrition and neonatal isolation stress impact infant rat brain development. These challenges alter stress responses and neurotransmitter levels in the hypothalamus and hippocampus, with potential clinical implications.
Area of Science:
- Neuroscience
- Developmental Biology
- Nutritional Science
Background:
- Nervous system maturation and behavior are influenced by prenatal nutrition and postnatal stimulation.
- The hypothalamus and hippocampus are critical brain regions susceptible to early-life disruptions.
Purpose of the Study:
- To investigate the combined effects of prenatal protein malnutrition and neonatal isolation stress on rat pup brain function.
- To assess neurochemical changes in the hypothalamus and hippocampus.
Main Methods:
- Infant rats were subjected to prenatal protein malnutrition (6% casein diet) and daily neonatal isolation stress (PND 2-8).
- Plasma corticosterone levels and neurotransmitter (dopamine, serotonin) and metabolite concentrations were measured in the hypothalamus and hippocampus.
Main Results:
- Malnourished pups showed reduced weight, smaller hypothalami, and suppressed corticosterone response to stress.
- Prenatal malnutrition increased hypothalamic dopamine metabolism and serotonin levels, while decreasing hippocampal dopamine.
- Neonatal isolation altered neurotransmitter metabolism, with effects varying based on malnutrition status.
Conclusions:
- Prenatal protein malnutrition and neonatal isolation induce distinct neurochemical alterations in the hypothalamus and hippocampus.
- Combined early-life challenges may additively impact the hypothalamic-pituitary-adrenal (HPA) axis and serotonergic systems.
- Findings highlight potential clinical implications for neurodevelopmental disorders.
Abstract:
Maturation of the nervous system and consequent behavior depends in part on prenatal nutritional factors and postnatal environmental stimulation. In particular, the hypothalamus and the hippocampus are two important CNS areas that are vulnerable to such pre- and postnatal manipulations. Therefore, the present study was undertaken to explore the effects of both prenatal protein malnutrition and neonatal isolation stress on hypothalamic and hippocampal functioning in infant rats. Specifically, we assessed the levels of plasma corticosterone, as well as dopamine, serotonin and their metabolites in both the hypothalamus and hippocampus in rat pups that had been prenatally malnourished (6% casein diet) and isolated from nest, dam, and siblings for 1 h daily during postnatal days (PND) 2 through 8. We found that on PND 9 malnourished pups weighed less, had smaller hypothalami and a suppressed corticosterone response to acute and chronic isolation stress. However, their dopamine metabolism in the hypothalamus was increased following acute isolation on PND 9 as seen in isolated controls. Prenatal protein malnutrition also resulted in a significant elevation in serotonin in both brain areas, increased 5HIAA in the hypothalamus, and decreased dopamine in the hippocampus. Repeated isolation caused a reduction in 5HIAA in both brain parts, but only in control pups. These pre- and postnatal challenges may each cause a specific pattern of modifications in the CNS and, in combination, may be additive, particularly in the hypothalamic-pituitary-adrenal (HPA) stress response and the serotonergic functioning in both the hypothalamus and hippocampus, a finding with important clinical implications.
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