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Epigenetic Regulation of Cardiac Differentiation of Embryonic Stem Cells and Tissues
Published on: June 3, 2016
Cadmium disrupts mouse embryonic stem cell differentiation into ovarian granulosa cells through epigenetic mechanisms
Jin Liu1, Lingfang Li1, Jianlin Zhu1
1Department of Preventive Medicine, Fujian Provincial Key Laboratory of Environmental Factors and Cancer, Key Laboratory of Environment and Health, School of Public Health, Fujian Medical University, Xueyan Road No. 1, Minhou County, Fuzhou 350108 China.
Abstract:
Cadmium (Cd) can influence germ cell development, and epigenetic events may be involved. However, there is no study on whether Cd can influence germ cells differentiation into ovarian granulosa cells (GCs), and more insight into the molecular mechanism of the effect of Cd on germ cell development from mouse embryonic stem (ES) cells into ovarian granulosa cells and investigation of appropriate epigenetic factors are of great importance. In this study, mouse ES cell differentiation into GCs was established in an in vitro model. Subsequently, different Cd concentrations of 0, 0.1, 0.3, and 1 and then 3.0, and 10.0 μmol/L were cultured in this in vitro model. We demonstrated that Cd treatment can interrupt ES cell differentiation into GCs by morphology and ultrastructure observation. Four specific markers (octamer-binding transcription factor 4 (OCT4), sex-determining region Y-box 2 (SOX2), Nanog homeobox (Nanog), and Anti-müllerian hormone type II receptor (Amhr2)) were significantly changed as measured by quantitative real-time-PCR or Western blot (p < 0.05). Cd also significantly changed the DNA methylation of GC sites on the CpG island of Nanog according to the sequential mass ARRAYR methylation method (p < 0.05). The MeRIP-qPCR method was used to detect the levels of N6-methyladenosine (m6A) methylation modification of long noncoding RNA (lncRNA) 1281 and indicated that they were decreased (p < 0.05). Microarray chip analysis, miRNA screening, and bioinformatics were used to further explore the roles of marker regulation-related miRNAs, and 27 miRNAs were putatively related to Cd-interrupted differentiation in ES cells. These data indicated that Cd can interrupt ES cell differentiation into GCs and affect germ cell development, and the underlying mechanism may involve epigenetic mechanisms.
Insights
Cadmium exposure disrupts mouse embryonic stem cell differentiation into ovarian granulosa cells. This effect is linked to altered DNA methylation and N6-methyladenosine modification, impacting germ cell development.
Area of Science:
- Reproductive Biology
- Developmental Biology
- Toxicology
Background:
- Cadmium (Cd) is a toxic metal known to affect germ cell development.
- Epigenetic modifications are implicated in cellular differentiation processes.
- The specific impact of Cd on the differentiation of mouse embryonic stem (ES) cells into ovarian granulosa cells (GCs) and its underlying molecular mechanisms remain largely unstudied.
Purpose of the Study:
- To investigate the effect of Cadmium on the in vitro differentiation of mouse embryonic stem cells into ovarian granulosa cells.
- To elucidate the molecular mechanisms, including epigenetic factors, by which Cadmium interferes with this differentiation process.
Main Methods:
- Established an in vitro model for mouse ES cell differentiation into GCs.
- Exposed cells to varying concentrations of Cadmium (0-10.0 μmol/L).
- Utilized morphology and ultrastructure observation, quantitative real-time-PCR, Western blot, DNA methylation analysis (MassARRAY), MeRIP-qPCR for m6A modification, microarray analysis, miRNA screening, and bioinformatics.
Main Results:
- Cadmium exposure significantly interrupted ES cell differentiation into GCs.
- Key differentiation markers (OCT4, SOX2, Nanog, Amhr2) showed significant changes.
- Cadmium altered DNA methylation patterns in the Nanog gene and decreased N6-methyladenosine (m6A) levels in lncRNA-1281.
- 27 miRNAs were identified as potentially related to Cadmium-interrupted differentiation.
Conclusions:
- Cadmium exposure impedes the differentiation of mouse ES cells into GCs, thereby affecting germ cell development.
- Epigenetic mechanisms, including DNA methylation and m6A modification, are involved in Cadmium's disruptive effects.
- This study provides novel insights into the molecular basis of Cadmium toxicity on early germ cell development.

