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A Rat Methyl-Seq Platform to Identify Epigenetic Changes Associated with Stress Exposure
Published on: October 24, 2018
Targeted genome-wide methylation and gene expression analyses reveal signaling pathways involved in ovarian
Aparna Mahakali Zama1, Mehmet Uzumcu
1Department of Animal Sciences, School of Environmental and Biological Sciences, Rutgers, The State University of New Jersey, New Brunswick, NJ 08901, USA.
Abstract:
Transient exposure to methoxychlor (MXC), an environmental endocrine-disrupting chemical, during fetal and neonatal stages causes ovarian dysfunction in pubertal, adult, and aging animals. Adult animals have reduced number of ovulations and abnormal follicular composition associated with altered gene expression and DNA methylation patterns. To test the hypothesis that the ovarian epigenomic changes induced by MXC are detectable following the exposure period, leading to altered gene expression by adulthood, we conducted a targeted genome-wide methylation study using Nimblegen 3x720K CpG Island Plus RefSeq Promoter Arrays. Control (vehicle), low-dose MXC (20 μg/kg/day), or high-dose MXC (100 mg/kg/day) treatments were administered between Embryonic Day 19 and Postnatal Day (PND) 7. Ovaries were collected at PND 7 immediately after exposure or at adulthood, PND 60. Array hybridizations were conducted with genomic DNA after methylated DNA immunoprecipitation and the array data were analyzed. DNA methylation events were functionally annotated, and candidate loci common to all the treatments or unique to some treatments were identified. Specific loci encoding signaling molecules such as the regulatory subunit p85 of phosphoinositide-3-kinase, insulin-like growth factor-1 receptor, Harvey rat sarcoma viral oncogene, insulin receptor, and forkhead box protein O3 were identified to be hypermethylated in MXC-treated ovaries at PND 7 and/or PND 60. Examination of gene expression changes with TaqMan low-density arrays revealed that nearly 25% of the genes that were assayed were downregulated. These data demonstrate that key molecules in specific signaling pathways such as PTEN signaling, IGF-1 signaling, or rapid estrogen signaling are epigenetically altered in MXC-exposed ovaries, which is associated with ovarian dysfunction and female infertility.
Insights
Methoxychlor (MXC) exposure during development causes lasting epigenetic changes in ovaries, leading to altered gene expression and female infertility. These ovarian epigenomic alterations persist into adulthood, impacting reproductive health.
Area of Science:
- Environmental toxicology
- Reproductive biology
- Epigenetics
Background:
- Transient exposure to methoxychlor (MXC), an endocrine-disrupting chemical, during fetal and neonatal development causes ovarian dysfunction later in life.
- This dysfunction is characterized by reduced ovulation and abnormal follicular composition, linked to altered gene expression and DNA methylation.
Purpose of the Study:
- To investigate if ovarian epigenomic changes induced by MXC exposure during development are detectable in adulthood.
- To determine if these epigenetic alterations correlate with altered gene expression and subsequent ovarian dysfunction.
Main Methods:
- A targeted genome-wide methylation study was performed using Nimblegen arrays on ovaries from rats exposed to control, low-dose, or high-dose MXC from embryonic day 19 to postnatal day 7 (PND).
- Ovaries were collected at PND 7 and PND 60 (adulthood) for methylated DNA immunoprecipitation and array hybridization.
- Gene expression was analyzed using TaqMan low-density arrays.
Main Results:
- Specific loci encoding key signaling molecules (e.g., PI3K regulatory subunit p85, IGF-1 receptor, IRS-1, INSR, FOXO3) were found to be hypermethylated in MXC-treated ovaries at both PND 7 and PND 60.
- Approximately 25% of assayed genes showed downregulation in MXC-exposed ovaries.
- Epigenetic alterations in signaling pathways like PTEN, IGF-1, and rapid estrogen signaling were identified.
Conclusions:
- Developmental exposure to MXC induces persistent epigenetic modifications in the ovary.
- These epigenetic changes are associated with altered gene expression and contribute to ovarian dysfunction and female infertility.
- The study highlights the long-term impact of endocrine-disrupting chemicals on reproductive health through epigenetic mechanisms.

