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Immunity in children with exposure to environmental lead: I. Effects on cell numbers and cell-mediated immunity
P M Lutz1, C Jayachandran, N L Gale
1University of Missouri-Rolla, 65401-249, Rolla, MO, USA.
Insights
This study found no significant immune system effects in young children with low to moderate blood lead levels. Lead exposure
Area of Science:
- Immunology
- Environmental Health
- Pediatrics
Background:
- Animal studies indicate lead exposure suppresses immune function at low levels.
- Children under six are most vulnerable to environmental lead exposure.
- Limited data exist on lead's effects on the developing immune system in young children.
Purpose of the Study:
- To assess the impact of blood lead levels on the immune system in children aged 9 months to 6 years.
- To investigate cellular immune parameters and lymphocyte response to mitogens in relation to lead exposure.
- To analyze immune cell counts and ratios in children with varying blood lead levels.
Main Methods:
- Phase I study involving 193 children with blood lead levels from 1 to 50 μg/dL.
- Enumeration of immune cells (lymphocytes, monocytes, granulocytes, T cells, B cells, CD4+, CD8+).
- In vitro mitogenic stimulation of lymphocytes using PHA, Con A, and PWM.
Main Results:
- No consistent significant differences in immune cell parameters were observed across CDC risk categories.
- No significant correlation between blood lead levels and cellular immune parameters was found.
- Lymphocyte response to mitogens showed no consistent statistically significant differences among risk categories.
Conclusions:
- Lead exposure at levels studied did not show consistent, significant effects on the developing immune system in young children.
- Observed effects of lead, if any, are likely subtle and masked by natural variations in immune responses.
- Further research may be needed to detect subtle immunomodulatory effects of lead in children.
Abstract:
Studies conducted in animal systems have shown that lead is an immunosuppressive agent at levels far below those causing overt toxicity. Children less than six years of age are the population at highest risk for exposure to environmental lead; however little data were available to assess effects on the developing immune system in this age group. Reported here is the completed Phase I study on 193 children, ages 9 months to 6 years, with blood lead levels from 1 to 50 (μg dL(-1), recruited from the urban population of Springfield-Greene County, Missouri, through their participation in the WIC (Women, Infants, and Children) and Lead Poisoning Prevention Programs. This portion of the study dealt with enumeration of cells involved with the immune response andin vitro mitogenic stimulation of lymphocytes. The percent lymphocytes, monocytes, granulocytes, T cells (total), B cells, CD4+T's and CD8+T's and CD4+/CD8+ ratios were determined and the data were analysed. No consistent significant differences were seen among the various risk categories currently identified by the CDC. Though two age groups showed some possible effect of lead, none of the various cellular parameters within these age groups showed significant correlation with blood lead. The lymphocyte response toin vitro mitogenic stimulus was studied on 42 children (including 17 in risk classifications IIA and higher) using the mitogens phytohemagglutinin (PHA), Concanavalin A (Con A), and Pokeweed mitogen (PWM). No consistent statistically significant differences were seen among the various risk categories; the effects of lead, if present, are most likely subtle and obscured by the interindividual and time-dependent variation inherent in this type of study.
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