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Updated: Aug 13, 2025

Long-term Behavioral and Reproductive Consequences of Embryonic Exposure to Low-dose Toxicants
Published on: March 6, 2018
Long-term potentiation and depression regulatory microRNAs were highlighted in Bisphenol A induced learning and
Mengxin Luo1,2, Ling Li3, Muyao Ding1
1School of Public Health, Dalian Medical University, Dalian, China.
Abstract:
The mechanisms of Bisphenol A (BPA) induced learning and memory impairment have still not been fully elucidated. MicroRNAs (miRNAs) are endogenous non-coding small RNA molecules involved in the process of toxicant-induced neurotoxicity. To investigate the role of miRNAs in BPA-induced learning and memory impairment, we analyzed the impacts of BPA on miRNA expression profile by high-throughput sequencing in mice hippocampus. Results showed that mice treated with BPA displayed impairments of spatial learning and memory and changes in the expression of miRNAs in the hippocampus. Seventeen miRNAs were significantly differentially expressed after BPA exposure, of these, 13 and 4 miRNAs were up- and downregulated, respectively. Bioinformatic analysis of Gene Ontology (GO) and pathway suggests that BPA exposure significantly triggered transcriptional changes of miRNAs associated with learning and memory; the top five affected pathways involved in impairment of learning and memory are: 1) Long-term depression (LTD); 2) Thyroid hormone synthesis; 3) GnRH signaling pathway; 4) Long-term potentiation (LTP); 5) Serotonergic synapse. Eight BPA-responsive differentially expressed miRNAs regulating LTP and LTD were further screened to validate the miRNA sequencing data using Real-Time PCR. The deregulation expression levels of proteins of five target genes (CaMKII, MEK1/2, IP3R, AMPAR1 and PLCβ4) were investigated via western blot, for further verifying the results of gene target analysis. Our results showed that LTP and LTD related miRNAs and their targets could contribute to BPA-induced impairment of learning and memory. This study provides valuable information for novel miRNA biomarkers to detect changes in impairment of learning and memory induced by BPA exposure.
Insights
Bisphenol A (BPA) exposure impairs learning and memory by altering microRNA (miRNA) expression in the brain. These changes in miRNAs and their targets are linked to neurotoxicity and cognitive deficits.
Area of Science:
- Neuroscience
- Toxicology
- Molecular Biology
Background:
- Bisphenol A (BPA) is an endocrine-disrupting chemical linked to neurotoxicity.
- MicroRNAs (miRNAs) are key regulators of gene expression and play roles in neurotoxicity.
- Mechanisms underlying BPA-induced cognitive impairment are not fully understood.
Purpose of the Study:
- To investigate the role of miRNAs in BPA-induced learning and memory deficits.
- To analyze the impact of BPA on miRNA expression profiles in the mouse hippocampus.
Main Methods:
- High-throughput sequencing to profile miRNA expression in mice hippocampus after BPA exposure.
- Bioinformatic analysis (Gene Ontology, pathway analysis) to identify affected biological processes.
- Real-Time PCR and Western blot to validate miRNA sequencing data and target gene expression.
Main Results:
- BPA exposure impaired spatial learning and memory in mice.
- Seventeen miRNAs were significantly differentially expressed in the hippocampus.
- Affected pathways included Long-term depression (LTD), Long-term potentiation (LTP), and serotonergic synapse.
Conclusions:
- Differentially expressed miRNAs and their targets contribute to BPA-induced learning and memory impairment.
- LTP and LTD-related miRNAs are implicated in BPA neurotoxicity.
- Identified miRNAs may serve as potential biomarkers for BPA-induced cognitive changes.
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