Related Experiment Video
Updated: May 30, 2026

An Allele-specific Gene Expression Assay to Test the Functional Basis of Genetic Associations
Published on: November 3, 2010
Differential gene expression and a functional analysis of PCB-exposed children: understanding disease and disorder
Sisir K Dutta1, Partha S Mitra1, Somiranjan Ghosh1
1Molecular Genetics Laboratory, Howard University, Washington, DC, USA.
Insights
High polychlorinated biphenyl (PCB) exposure in children is linked to altered gene expression, impacting cellular functions and increasing risks for cardiovascular disease and cancer. This study identifies key molecular pathways involved in PCB toxicity.
Area of Science:
- Environmental Health
- Molecular Biology
- Toxicology
Background:
- Polychlorinated biphenyls (PCBs) are persistent environmental pollutants with known toxic effects.
- Understanding the molecular mechanisms of PCB toxicity is crucial for assessing health risks in exposed populations.
- Gene-environment interactions play a significant role in susceptibility to toxic exposures.
Purpose of the Study:
- To elucidate the molecular mechanisms and pathways underlying PCB-induced toxicities.
- To identify differentially expressed genes in children with high versus low PCB exposure.
- To investigate potential links between PCB exposure, gene expression, and associated health outcomes.
Main Methods:
- Microarray-based differential gene expression analysis of peripheral blood mononuclear cells from children in the Slovak Republic.
- Comparison of gene expression profiles between children in the highest (>75th percentile) and lowest (<25th percentile) PCB blood concentration groups.
- Pathway analysis using Ingenuity Pathway Analysis (IPA) tool on a set of 162 significantly differentially expressed genes (p < 0.00001).
Main Results:
- Identified 162 significantly differentially expressed genes between high and low PCB-exposed children.
- Key affected molecular and cellular functions include Cell-To-Cell Signaling, Cellular Movement, Cell Signaling, Molecular Transport, and Vitamin and Mineral Metabolism.
- Associated pathways suggest increased risk for cardiovascular disease, cancer, cardiotoxicity, hepatotoxicity, and nephrotoxicity.
Conclusions:
- High PCB exposure significantly alters gene expression in children, implicating specific molecular pathways in toxicity.
- Observed gene expression changes provide insight into the molecular basis of PCB-related diseases, including cardiovascular and oncological conditions.
- Findings highlight the importance of gene-environment interactions in PCB toxicity and suggest potential organ-specific effects.
Abstract:
The goal of the present study is to understand the probable molecular mechanism of toxicities and the associated pathways related to observed pathophysiology in high PCB-exposed populations. We have performed a microarray-based differential gene expression analysis of children (mean age 46.1 months) of Central European descent from Slovak Republic in a well-defined study cohort. The subset of children having high blood PCB concentrations (>75 percentile) were compared against their low PCB counterparts (<25 percentile), with mean lipid-adjusted PCB values of 3.02±1.3 and 0.06±0.03 ng/mg of serum lipid, for the two groups, respectively (18.1±4.4 and 0.3±0.1 ng/ml of serum). The microarray was conducted with the total RNA from the peripheral blood mononuclear cells of the children using an Affymetrix platform (GeneChip Human genome U133 Plus 2.0 Array) and was analyzed by Gene Spring (GX 10.0). A highly significant set of 162 differentially expressed genes between high and low PCB groups (p value <0.00001) were identified and subsequently analyzed using the Ingenuity Pathway Analysis tool. The results indicate that Cell-To-Cell Signaling and Interaction, Cellular Movement, Cell Signaling, Molecular Transport, and Vitamin and Mineral Metabolism were the major molecular and cellular functions associated with the differentially altered gene set in high PCB-exposed children. The differential gene expressions appeared to play a pivotal role in the development of probable diseases and disorders, including cardiovascular disease and cancer, in the PCB-exposed population. The analyses also pointed out possible organ-specific effects, e.g., cardiotoxicity, hepatotoxicity and nephrotoxicity, in high PCB-exposed subjects. A few notable genes, such as BCL2, PON1, and ITGB1, were significantly altered in our study, and the related pathway analysis explained their plausible involvement in the respective disease processes, as mentioned. Our results provided insight into understanding the associated molecular mechanisms of complex gene-environment interactions in a PCB-exposed population. Future endeavors of supervised genotyping of pathway-specific molecular epidemiological studies and population biomarker validations are already underway to reveal individual risk factors in these PCB-exposed populations.
Related Concept Videos
Pleiotropy
Human Genetics
The complex relationship between genetics and psychology is observable through common biological components such...
Gene-Environment Interactions