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Interactions of chronic lead exposure and intermittent stress: consequences for brain catecholamine systems and
Miriam B Virgolini1, Kevin Chen, Doug D Weston
1Environmental and Occupational Health Sciences Institute, a Joint Institute of the Robert Wood Johnson Medical School, University of Medicine and Dentistry of New Jersey, Piscataway, 08854, USA. dcs@eohsi.rutgers.edu
Insights
Chronic lead exposure in rats, even when started later in life, alters stress responses and brain chemistry. This suggests lead
Area of Science:
- Neuroscience
- Toxicology
- Endocrinology
Background:
- Lead (Pb) exposure and stress are risk factors for children.
- Maternal Pb exposure alters offspring hypothalamic-pituitary-adrenal (HPA) axis function.
- Chronic Pb exposure initiated later in development needs further investigation.
Purpose of the Study:
- To determine the effects of chronic Pb exposure combined with intermittent stress.
- To investigate Pb's impact on HPA axis function and stress responsivity.
- To examine Pb's influence on neurochemical changes.
Main Methods:
- Male rats were exposed to 0, 50, or 150 ppm Pb acetate from weaning.
- Blood Pb levels were measured.
- Basal corticosterone and glucocorticoid receptor binding were assessed.
- Stress responsivity was measured via Fixed Interval (FI) schedule-controlled behavior.
- Serotonin (5-HT) and 5-HIAA levels were analyzed in brain regions.
Main Results:
- Pb exposure decreased basal corticosterone and glucocorticoid receptor binding.
- Novelty stress affected FI performance only in Pb-exposed rats.
- Cold stress increased corticosterone significantly only in Pb-exposed rats.
- Pb exposure altered serotonin and 5-HIAA levels in several brain regions.
- Changes in neurochemicals mirrored basal corticosterone levels.
Conclusions:
- Chronic Pb exposure initiated later in development impacts HPA axis function and stress response.
- Pb exposure alters central nervous system function, potentially via HPA axis mediation.
- Studying single chemicals in isolation may not fully capture neurotoxic hazards.
- Findings raise concerns about the combined effects of Pb and stress in vulnerable populations.
Abstract:
Elevated lead (Pb) burden and high stress levels are co-occurring risk factors in low socioeconomic status (SES) children. Our previous work demonstrated that maternal Pb exposure can permanently alter hypothalamic-pituitary-adrenal (HPA) axis function and responsivity to stress challenges in offspring. The current study sought to determine the consequences of chronic Pb exposures initiated later in development combined with variable intermittent stress challenges. Male rats were exposed chronically from weaning to 0, 50, or 150 ppm Pb acetate drinking solutions (producing blood Pb levels of <5, 9-15, and 23-27 mug/dl, respectively). Pb itself decreased basal plasma corticosterone, with greater effects at 50 than 150 ppm; 150 ppm reduced both cytosolic and nuclear glucocorticoid receptor binding. Responsivity to stress challenges including novelty, cold, and restraint, was measured as changes in Fixed Interval (FI) schedule-controlled behavior in a subset of rats within each group. FI performance was modified by novelty stress only in Pb-treated rats, whereas cold and restraint stress effects were comparable across groups. Novelty elevated corticosterone equivalently across groups, but cold stress markedly increased corticosterone only in Pb-treated groups. The pattern of Pb-induced changes in serotonin (5-HT) or its metabolite 5-HIAA in frontal cortex, nucleus accumbens, striatum, and hypothalamus resembled that observed for basal corticosterone levels indicating a relationship between these variables. In addition to suggesting the potential for HPA axis-mediated effects of Pb on the central nervous system, these findings also raise questions about whether single chemicals studied in isolation from other relevant risk factors can adequately identify neurotoxic hazards.
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