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Updated: Feb 14, 2026

A Modified Co-Culture System for Understanding Granulosa-Theca Cell Interactions in the Bovine Ovary
Published on: September 19, 2025
Transcriptome profiling of bovine ovarian theca cells treated with fibroblast growth factor 9
L F Schütz1, R E Hurst2, N B Schreiber1
1Department of Animal Science, Oklahoma State University, Stillwater, OK 74078, USA.
Abstract:
We reported previously that fibroblast growth factor 9 (FGF9) acts as an antidifferentiation factor, stimulating proliferation of granulosa cells (GCs) and theca cells (TCs) while suppressing hormone-induced steroidogenesis of these cells. How FGF9 acts to simultaneously suppress steroidogenesis and stimulate proliferation remains to be fully elucidated. Thus, this study was undertaken to clarify the effects of FGF9 on the TC transcriptome. Ovaries were obtained from beef heifers at a local abattoir, TCs were isolated from large antral follicles, and cultured with or without 30 ng/mL of FGF9 for 24 h in the presence of LH and IGF-1. After treatment, total RNA was extracted from TC and processed for microarray using Affymetrix GeneChip Bovine Genome Arrays (n = 4/group). Transcriptome analysis comparing FGF9-treated TC with control TC using 1.3-fold cutoff, and a P < 0.05 significance level identified 355 differentially expressed transcripts, with 164 elements upregulated and 191 elements downregulated by FGF9. The ingenuity pathway analysis (IPA) was used to investigate how FGF9 treatment affects molecular pathways, biological functions, and the connection between molecules in bovine TC. The IPA software identified 346 pathways in response to FGF9 in TC involved in several biological functions and unveiled interesting relationships among genes related to cell proliferation (eg, CCND1, FZD5, and MYB), antioxidation/cytoprotection (eg, HMOX1 and NQO1), and steroidogenesis (eg, CYP11A1 and STAR). Overall, genes, pathways, and networks identified in this study painted a picture of how FGF9 may regulate folliculogenesis, providing novel candidate genes for further investigation of FGF9 functions in ovarian follicular development.
Insights
Fibroblast growth factor 9 (FGF9) stimulates ovarian cell proliferation while suppressing steroidogenesis. This study clarifies FGF9's effects on the theca cell transcriptome, identifying key genes and pathways involved in ovarian follicular development.
Area of Science:
- Reproductive Biology
- Molecular Endocrinology
- Genomics
Background:
- Fibroblast growth factor 9 (FGF9) is known to stimulate ovarian cell proliferation and inhibit steroidogenesis.
- The precise molecular mechanisms by which FGF9 exerts these dual effects on theca cells (TCs) are not fully understood.
Purpose of the Study:
- To elucidate the effects of FGF9 on the bovine theca cell transcriptome.
- To identify molecular pathways and gene networks regulated by FGF9 in TCs.
Main Methods:
- Theca cells were isolated from bovine ovaries and cultured with or without FGF9 in the presence of LH and IGF-1.
- Microarray analysis was performed on RNA extracted from treated and control TCs.
- Ingenuity Pathway Analysis (IPA) was used to interpret differentially expressed genes and associated pathways.
Main Results:
- FGF9 treatment resulted in 355 differentially expressed transcripts in TCs (164 upregulated, 191 downregulated).
- IPA identified 346 pathways affected by FGF9, including those related to cell proliferation, antioxidation, and steroidogenesis.
- Key genes involved in cell proliferation (e.g., CCND1), antioxidation (e.g., HMOX1), and steroidogenesis (e.g., CYP11A1) were identified.
Conclusions:
- FGF9 significantly alters the bovine theca cell transcriptome, influencing pathways critical for ovarian function.
- The identified genes and pathways provide novel insights into FGF9's role in regulating folliculogenesis.
- These findings offer potential candidate genes for future research on FGF9's function in ovarian follicular development.
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