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Defining the Program of Maternal mRNA Translation during In vitro Maturation using a Single Oocyte Reporter Assay
Published on: June 16, 2021
Transcription factor-mediated gene regulatory networks in the formation of oocytes
Di Wu1, Zifan Liang2, Ziqi Li2
1Dong Guan Guang Ji Hospital, Dong Guan, Guangdong 523000, China.
Abstract:
Context The induction of oocytes from embryonic stem cells (ESCs) in vitro provides a promising tool for the treatment of female infertility. Various molecules are involved in this complex process, which requires further elucidation. Aims This study aims to screen for factors that induce the differentiation of ESCs into oocytes in vitro by constructing transcription factor (TF)-mediated gene regulatory networks (GRNs) during the formation of oocytes. Methods Based on publicly available multi-omics data, the weighted gene co-expression network analysis (WGCNA) method identified oocyte-specific TFs and key oocyte-specific genes. Additionally, chromatin immunoprecipitation (ChIP) sequencing data and ChIP-qPCR analysis were used to examine GRNs mediated by oocyte-specific TFs. Key results First, by analyzing assay for transposase-accessible chromatin sequencing (ATAC-seq) and DNase I hypersensitive site sequencing (DNase-seq) data from human and mouse ESCs, primordial germ cells (PGCs), and oocytes, we identified five and three oocyte-specific TFs, respectively. RNA sequencing and WGCNA further revealed 38 key oocyte-specific genes. Subsequently, when comparing cell-specific TFs in mouse and human oocytes, we identified three overlapping oocyte-specific TFs (NFYA, NFYB, and NFYC). Notably, NFYA exhibited significantly elevated expression levels in oocytes compared to ESCs and PGCs. Additionally, ChIP-qPCR results demonstrated that NFYA was relatively enriched at the promoter region of the key oocyte-specific gene, m6 A demethylase Alkbh5 . Conclusions This study provides preliminary insights into the role of cell-specific TFs and TF-mediated GRNs in oocyte formation by identifying oocyte-specific genes and key oocyte-specific TFs. Implications The findings indicate that their intricate regulatory mechanisms may significantly contribute to enhancing the efficiency of differentiating ESCs into oocytes.
Insights
Researchers identified key transcription factors (TFs) and genes involved in oocyte formation from embryonic stem cells (ESCs). This study enhances understanding of gene regulatory networks (GRNs) for improved in vitro oocyte differentiation, potentially aiding female infertility treatments.
Area of Science:
- Developmental Biology
- Stem Cell Biology
- Genomics and Bioinformatics
Background:
- Inducing oocytes from embryonic stem cells (ESCs) in vitro is a promising approach for treating female infertility.
- The molecular mechanisms governing oocyte formation require further investigation.
- Understanding transcription factor (TF)-mediated gene regulatory networks (GRNs) is crucial for this process.
Purpose of the Study:
- To screen for factors that induce ESC differentiation into oocytes in vitro.
- To construct TF-mediated GRNs during oocyte formation.
- To identify oocyte-specific TFs and key genes involved in oogenesis.
Main Methods:
- Weighted gene co-expression network analysis (WGCNA) applied to multi-omics data.
- Analysis of ATAC-seq and DNase-seq data from ESCs, primordial germ cells (PGCs), and oocytes.
- Chromatin immunoprecipitation (ChIP) sequencing and ChIP-qPCR to examine GRNs.
Main Results:
- Identified five (human) and three (mouse) oocyte-specific TFs.
- Discovered 38 key oocyte-specific genes using RNA sequencing and WGCNA.
- Found three overlapping TFs (NFYA, NFYB, NFYC) in mouse and human oocytes, with NFYA showing significantly elevated expression and enrichment at the Alkbh5 promoter.
Conclusions:
- This study provides preliminary insights into cell-specific TFs and TF-mediated GRNs in oocyte formation.
- Identified novel oocyte-specific genes and key TFs, including NFYA.
- The findings suggest that these regulatory mechanisms are critical for enhancing in vitro ESC-to-oocyte differentiation efficiency.
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