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Updated: Feb 10, 2026

Using Mouse Oocytes to Assess Human Gene Function During Meiosis I
Published on: April 10, 2018
Functional signaling and gene regulatory networks between the oocyte and the surrounding cumulus cells
Fernando H Biase1, Katelyn M Kimble2
1Department of Animal Sciences, Auburn University, 559 Devall Dr, Auburn, AL, 36849, USA. fbiase@auburn.edu.
Background:
The maturation and successful acquisition of developmental competence by an oocyte, the female gamete, during folliculogenesis is highly dependent on molecular interactions with somatic cells. Most of the cellular interactions identified, thus far, are modulated by growth factors, ions or metabolites. We hypothesized that this interaction is also modulated at the transcriptional level, which leads to the formation of gene regulatory networks between the oocyte and cumulus cells. We tested this hypothesis by analyzing transcriptome data from single oocytes and the surrounding cumulus cells collected from antral follicles employing an analytical framework to determine interdependencies at the transcript level.
Results:
We overlapped our transcriptome data with putative protein-protein interactions and identified hundreds of ligand-receptor pairs that can transduce paracrine signaling between an oocyte and cumulus cells. We determined that 499 ligand-encoding genes expressed in oocytes and cumulus cells are functionally associated with transcription regulation (FDR < 0.05). Ligand-encoding genes with specific expression in oocytes or cumulus cells were enriched for biological functions that are likely associated with the coordinated formation of transzonal projections from cumulus cells that reach the oocyte's membrane. Thousands of gene pairs exhibit significant linear co-expression (absolute correlation > 0.85, FDR < 1.8 × 10- 5) patterns between oocytes and cumulus cells. Hundreds of co-expressing genes showed clustering patterns associated with biological functions (FDR < 0.5) necessary for a coordinated function between the oocyte and cumulus cells during folliculogenesis (i.e. regulation of transcription, translation, apoptosis, cell differentiation and transport).
Conclusion:
Our analyses revealed a complex and functional gene regulatory circuit between the oocyte and surrounding cumulus cells. The regulatory profile of each cumulus-oocyte complex is likely associated with the oocytes' developmental potential to derive an embryo.
Insights
Oocyte and cumulus cell interactions are regulated by a gene network, influencing developmental competence. This study deciphers transcriptional crosstalk crucial for successful folliculogenesis and embryo development.
Area of Science:
- Reproductive Biology
- Molecular Genetics
- Developmental Biology
Background:
- Oocyte maturation relies on molecular interactions with somatic cells during folliculogenesis.
- These interactions are primarily modulated by growth factors, ions, and metabolites.
- A hypothesis proposed transcriptional-level modulation forming gene regulatory networks between oocytes and cumulus cells.
Purpose of the Study:
- To investigate the hypothesis that gene regulatory networks modulate oocyte-cumulus cell interactions.
- To analyze transcriptome data from single oocytes and cumulus cells to identify interdependencies at the transcript level.
Main Methods:
- Analysis of transcriptome data from single oocytes and surrounding cumulus cells from antral follicles.
- Utilizing an analytical framework to determine transcript-level interdependencies.
- Overlapping transcriptome data with putative protein-protein interactions to identify ligand-receptor pairs.
Main Results:
- Identified hundreds of ligand-receptor pairs mediating paracrine signaling between oocytes and cumulus cells.
- Found 499 ligand-encoding genes associated with transcription regulation (FDR < 0.05).
- Detected thousands of gene pairs with significant co-expression patterns, clustering for functions like transcription, translation, and apoptosis.
Conclusions:
- Revealed a complex gene regulatory circuit between oocytes and cumulus cells.
- This circuit is crucial for coordinated function during folliculogenesis.
- The regulatory profile likely impacts the oocyte's developmental potential for embryo formation.
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