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Prenatal arsenic exposure and gene expression in fetal liver, heart, lung, and placenta
Kristal A Rychlik1, Sylvia Sanchez2, Chloe Kashiwagi2
1Department of Environmental Health and Engineering, Bloomberg School of Public Health, Johns Hopkins University, Baltimore, MD, USA; Public Health Program, School of Health Professions, Mayborn College of Health Sciences, University of Mary Hardin-Baylor, Belton, TX, USA.
Insights
Prenatal arsenic exposure alters gene expression in fetal organs, primarily impacting immune pathways. This study reveals multi-organ effects, offering insights into long-term health risks from early-life arsenic exposure.
Area of Science:
- Environmental Health
- Developmental Toxicology
- Molecular Biology
Background:
- Prenatal arsenic exposure is linked to adverse health outcomes, but underlying mechanisms affecting fetal organ development and immune function remain unclear.
- Understanding gene expression changes in multiple fetal organs is crucial for elucidating long-term health consequences.
Purpose of the Study:
- To investigate the impact of prenatal arsenic exposure on gene expression in the liver, placenta, heart, and lung of mouse fetuses.
- To identify specific biological pathways, particularly immune-related ones, affected by this exposure window.
Main Methods:
- Mice were exposed to 0 or 100 ppb sodium arsenite from pre-mating until gestation day 18.
- Gene expression analysis was performed using RT-qPCR and Agilent 44K microarrays.
- Bioinformatic analyses, including network construction and pathway enrichment, were conducted using String Database and Cytoscape.
Main Results:
- Significant alterations in messenger RNA (mRNA) expression were observed across all investigated organs: 251 in the liver, 165 in the placenta, 158 in the heart, and 41 in the lung.
- Many affected pathways were immune-related, consistent with previous research.
- Reduced expression of Gbp3, involved in interferon gamma response, was noted in the placenta of male fetuses exposed to arsenic.
Conclusions:
- This study provides the first multi-organ comparison of gene expression changes following prenatal exposure to environmentally relevant arsenic levels.
- Findings highlight the significant impact of prenatal arsenic on immune-related pathways across fetal organs.
- The results enhance mechanistic understanding of long-term health issues in populations exposed to arsenic early in life.
Abstract:
Prenatal arsenic exposure has been linked to a myriad of negative health effects. There is relatively little insight into the mechanisms and signaling alterations across different fetal organs that drive long-term immune-related issues following prenatal arsenic exposure. Therefore, the effects of this exposure window on gene expression in the liver, placenta, heart, and lung of gestation day (GD) 18 C57BL/6 mouse fetuses were investigated. From two weeks prior to mating until tissue collection at GD18, mice were exposed to 0 or 100 ppb sodium (meta) arsenite in drinking water, ad libitum. Genes of interest were analyzed by RT-qPCR, complemented with untargeted Agilent 44 K microarray analysis. Data cleanup and analysis was performed in RStudio. Differentially expressed mRNAs were queried in the String Database and using Cytoscape to create interaction networks and identify significantly enriched biological pathways. A total of 251, 165, 158, and 41 genes were significantly altered in the liver, placenta, heart, and lung, respectively, when treated samples were compared to controls. Many altered pathways were immune-related, supporting prior research. Most notably, gene expression of Gbp3, a key player in the cellular response to interferon gamma, was found to be reduced in placentas of male fetuses exposed to arsenic compared to controls (p = 0.0237). IMPACT: This is the first study comparing alterations in gene expression across multiple organs following prenatal exposure to environmentally relevant levels of arsenic. These findings, elucidating the multi-organ impact of prenatal arsenic exposure on predominantly immune-related pathways, further our mechanistic understanding of the long-term health effects observed in early-life arsenic-exposed populations.
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