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Long-term Behavioral and Reproductive Consequences of Embryonic Exposure to Low-dose Toxicants
Published on: March 6, 2018
Differential susceptibility to endocrine disruptor-induced epimutagenesis
Jake D Lehle1, John R McCarrey1
1Department of Biology, University of Texas at San Antonio, 1 UTSA Circle, San Antonio, TX 78249, USA.
Abstract:
There is now considerable evidence indicating the potential for endocrine disrupting chemicals to alter the epigenome and for subsets of these epigenomic changes or "epimutations" to be heritably transmitted to offspring in subsequent generations. While there have been many studies indicating how exposure to endocrine disrupting chemicals can disrupt various organs associated with the body's endocrine systems, there is relatively limited information regarding the relative susceptibility of different specific organs, tissues, or cell types to endocrine disrupting chemical-induced epimutagenesis. Here we review available information about different organs, tissues, cell types, and/or cell lines which have been shown to be susceptible to specific endocrine disrupting chemical-induced epimutations. In addition, we discuss possible mechanisms that may be involved, or impacted by this tissue- or cell type-specific, differential susceptibility to different endocrine disrupting chemicals. Finally, we summarize available information indicating that certain periods of development display elevated susceptibility to endocrine disrupting chemical exposure and we describe how this may affect the extent to which germline epimutations can be transmitted inter- or transgenerationally. We conclude that cell type-specific differential susceptibility to endocrine disrupting chemical-induced epimutagenesis is likely to directly impact the extent to, or manner in, which endocrine disrupting chemical exposure initially induces epigenetic changes to DNA methylation and/or histone modifications, and how these endocrine disrupting chemical-induced epimutations can then subsequently impact gene expression, potentially leading to the development of heritable disease states.
Insights
Endocrine disrupting chemicals can cause heritable epigenetic changes (epimutations). This review explores how specific organs and developmental stages show varying susceptibility to these environmentally induced, transgenerational effects.
Area of Science:
- Environmental Epigenetics
- Toxicology
- Developmental Biology
Background:
- Endocrine disrupting chemicals (EDCs) are linked to epigenome alterations.
- Epigenomic changes induced by EDCs may be heritably transmitted across generations.
- Limited data exists on organ-specific susceptibility to EDC-induced epimutations.
Purpose of the Study:
- To review organs, tissues, and cell types susceptible to EDC-induced epimutations.
- To discuss mechanisms underlying differential tissue susceptibility to EDCs.
- To summarize developmental windows of heightened susceptibility and transgenerational inheritance.
Main Methods:
- Literature review of studies on EDC exposure and epimutations.
- Analysis of tissue/cell type-specific susceptibility to EDCs.
- Examination of developmental timing and intergenerational epigenetic inheritance.
Main Results:
- Specific organs, tissues, and cell types exhibit differential susceptibility to EDC-induced epimutations.
- Mechanisms influencing this differential susceptibility are discussed.
- Certain developmental periods increase susceptibility to EDCs and subsequent germline epimutation transmission.
Conclusions:
- Cell type-specific susceptibility to EDCs influences the induction and nature of epigenetic changes (DNA methylation, histone modifications).
- These EDC-induced epimutations can alter gene expression and potentially lead to heritable diseases.
- Understanding tissue-specific responses is crucial for assessing EDC risks.
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