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Updated: Jul 8, 2026

Isolation, Culture, and Characterization of Prostate Cancer-Associated Fibroblasts
Published on: August 1, 2025
Role of epithelial cell fibroblast growth factor receptor substrate 2alpha in prostate development, regeneration and
Yongyou Zhang1, Jue Zhang, Yongshun Lin
1Center for Cancer and Stem Cell Biology, Institute of Biosciences and Technology, Texas A&M Health Science Center, 2121 W. Holcombe Blvd., Houston, TX 77030-3303, USA.
Abstract:
The fibroblast growth factor (FGF) regulates a broad spectrum of biological activities by activation of transmembrane FGF receptor (FGFR) tyrosine kinases and their coupled intracellular signaling pathways. FGF receptor substrate 2alpha (FRS2alpha) is an FGFR interactive adaptor protein that links multiple signaling pathways to the activated FGFR kinase. We previously showed that FGFR2 in the prostate epithelium is important for branching morphogenesis and for the acquisition of the androgen responsiveness. Here we show in mice that FRS2alpha is uniformly expressed in the epithelial cells of developing prostates, whereas it is expressed only in basal cells of the mature prostate epithelium. However, expression of FRS2alpha was apparent in luminal epithelial cells of regenerating prostates and prostate tumors. To investigate FRS2alpha function in the prostate, the Frs2alpha alleles were ablated specifically in the prostatic epithelial precursor cells during prostate development. Similar to the ablation of Fgfr2, ablation of Frs2alpha disrupted MAP kinase activation, impaired prostatic ductal branching morphogenesis and compromised cell proliferation. Unlike the Fgfr2 ablation, disrupting Frs2alpha had no effect on the response of the prostate to androgens. More importantly, ablation of Frs2alpha inhibited prostatic tumorigenesis induced by oncogenic viral proteins. The results suggest that FRS2alpha-mediated signals in prostate epithelial cells promote branching morphogenesis and proliferation, and that aberrant activation of FRS2-linked pathways might promote tumorigenesis. Thus, the prostate-specific Frs2alpha(cn) mice provide a useful animal model for scrutinizing the molecular mechanisms underlying prostatic development and tumorigenesis.
Insights
Fibroblast Growth Factor Receptor Substrate 2alpha (FRS2alpha) is crucial for prostate development and cell proliferation. Ablating FRS2alpha inhibits prostate tumor formation, suggesting its role in tumorigenesis.
Area of Science:
- Cell Biology
- Molecular Biology
- Developmental Biology
Background:
- Fibroblast Growth Factor (FGF) signaling regulates biological activities via FGF Receptors (FGFRs).
- FGF Receptor Substrate 2alpha (FRS2alpha) acts as a key adaptor protein, linking FGFRs to intracellular pathways.
- Previous studies highlighted FGFR2's role in prostate development and androgen responsiveness.
Purpose of the Study:
- To investigate the function of FRS2alpha in prostate development and tumorigenesis.
- To elucidate the role of FRS2alpha in mediating FGFR signaling in prostate epithelial cells.
Main Methods:
- Generated prostate-specific FRS2alpha-ablated mice (Frs2alpha(cn)).
- Analyzed FRS2alpha expression patterns in developing, mature, regenerating, and tumor-bearing prostates.
- Assessed the impact of FRS2alpha ablation on MAP kinase activation, ductal branching, cell proliferation, androgen response, and tumorigenesis.
Main Results:
- FRS2alpha is expressed in developing prostate epithelium and in basal cells of mature prostates, but also in luminal cells of regenerating prostates and tumors.
- FRS2alpha ablation disrupted MAP kinase activation, impaired ductal branching morphogenesis, and reduced cell proliferation.
- Unlike FGFR2 ablation, FRS2alpha disruption did not affect androgen response but significantly inhibited oncogene-induced prostate tumorigenesis.
Conclusions:
- FRS2alpha-mediated signaling is essential for prostate branching morphogenesis and cell proliferation.
- Aberrant activation of FRS2alpha-linked pathways may contribute to prostate tumorigenesis.
- The Frs2alpha(cn) mouse model is valuable for studying prostate development and cancer mechanisms.
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