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Published on: October 24, 2018
Epigenetic modifications associated with pathophysiological effects of lead exposure
Madiha Khalid1, Mohammad Abdollahi1,2
1Toxicology and Diseases Group, Pharmaceutical Sciences Research Center (PSRC), The Institute of Pharmaceutical Sciences (TIPS), Tehran University of Medical Sciences (TUMS), Tehran, Iran.
Lead exposure alters epigenetic regulation, causing lifelong neurotoxic and extra-neurotoxic effects. These developmental impacts manifest as cognitive, behavioral, and systemic health issues, underscoring the critical need for prevention.
Area of Science:
- Environmental toxicology
- Epigenetics
- Developmental biology
Background:
- Lead (Pb) is a developmental toxicant.
- Pb exposure alters epigenetic mechanisms like DNA methylation, histone modifications, miRNAs, and chromatin accessibility.
- These epigenetic changes contribute to Pb's diverse pathophysiological outcomes.
Purpose of the Study:
- To elucidate the role of epigenetic dysregulation in Pb-induced developmental toxicity.
- To detail the neurotoxic and extra-neurotoxic consequences of Pb exposure.
- To highlight the persistent nature of Pb-induced health effects.
Main Methods:
- Review of existing literature on Pb exposure and epigenetic mechanisms.
- Analysis of dose, duration, sex, and tissue-specific effects of Pb.
- Categorization of Pb-induced neurotoxic and extra-neurotoxic outcomes.
Main Results:
- Pb exposure alters DNA methylation, histone modifications, miRNAs, and chromatin accessibility.
- Neurotoxic effects include memory and learning deficits, behavioral disorders, and neurodegenerative diseases.
- Extra-neurotoxic effects encompass metabolic, cardiovascular, hematopoietic, and reproductive impairments.
Conclusions:
- Pb-induced epigenetic alterations are central to its developmental toxicity.
- Pb exposure leads to a spectrum of lifelong neurotoxic and extra-neurotoxic health problems.
- Early-life Pb exposure results in persistent, undesirable health outcomes.
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