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Sox2 is an androgen receptor-repressed gene that promotes castration-resistant prostate cancer
Steven Kregel1, Kyle J Kiriluk, Alex M Rosen
1Committee on Cancer Biology, The University of Chicago, Chicago, Illinois, United States of America.
Abstract:
Despite advances in detection and therapy, castration-resistant prostate cancer continues to be a major clinical problem. The aberrant activity of stem cell pathways, and their regulation by the Androgen Receptor (AR), has the potential to provide insight into novel mechanisms and pathways to prevent and treat advanced, castrate-resistant prostate cancers. To this end, we investigated the role of the embryonic stem cell regulator Sox2 [SRY (sex determining region Y)-box 2] in normal and malignant prostate epithelial cells. In the normal prostate, Sox2 is expressed in a portion of basal epithelial cells. Prostate tumors were either Sox2-positive or Sox2-negative, with the percentage of Sox2-positive tumors increasing with Gleason Score and metastases. In the castration-resistant prostate cancer cell line CWR-R1, endogenous expression of Sox2 was repressed by AR signaling, and AR chromatin-IP shows that AR binds the enhancer element within the Sox2 promoter. Likewise, in normal prostate epithelial cells and human embryonic stem cells, increased AR signaling also decreases Sox2 expression. Resistance to the anti-androgen MDV3100 results in a marked increase in Sox2 expression within three prostate cancer cell lines, and in the castration-sensitive LAPC-4 prostate cancer cell line ectopic expression of Sox2 was sufficient to promote castration-resistant tumor formation. Loss of Sox2 expression in the castration-resistant CWR-R1 prostate cancer cell line inhibited cell growth. Up-regulation of Sox2 was not associated with increased CD133 expression but was associated with increased FGF5 (Fibroblast Growth Factor 5) expression. These data propose a model of elevated Sox2 expression due to loss of AR-mediated repression during castration, and consequent castration-resistance via mechanisms not involving induction of canonical embryonic stem cell pathways.
Insights
Sox2 (SRY-box 2) expression increases in castration-resistant prostate cancer, driven by loss of Androgen Receptor (AR) signaling. This suggests novel therapeutic targets beyond stem cell pathways.
Area of Science:
- Oncology
- Molecular Biology
- Stem Cell Biology
Background:
- Castration-resistant prostate cancer (CRPC) remains a significant clinical challenge.
- Androgen Receptor (AR) signaling plays a critical role in prostate cancer progression.
- Aberrant stem cell pathways are implicated in advanced prostate cancers.
Purpose of the Study:
- To investigate the role of embryonic stem cell regulator Sox2 (SRY-box 2) in normal and malignant prostate epithelial cells.
- To understand the relationship between AR signaling and Sox2 expression in prostate cancer.
- To explore Sox2's potential contribution to castration resistance.
Main Methods:
- Immunohistochemistry to assess Sox2 expression in prostate tumors.
- Androgen Receptor (AR) chromatin immunoprecipitation (ChIP) to identify AR binding sites.
- Analysis of Sox2 expression in response to AR signaling modulation and anti-androgen treatment.
- Functional studies involving Sox2 knockdown and ectopic expression in prostate cancer cell lines.
Main Results:
- Sox2 expression is elevated in higher Gleason score and metastatic prostate tumors.
- AR signaling represses endogenous Sox2 expression in CRPC cells and normal prostate cells.
- Resistance to anti-androgen MDV3100 leads to increased Sox2 expression.
- Ectopic Sox2 expression promotes castration-resistant tumor formation.
- Sox2 knockdown inhibits growth in CRPC cells.
- Sox2 up-regulation correlates with FGF5 (Fibroblast Growth Factor 5) expression, not CD133.
Conclusions:
- Elevated Sox2 expression in CRPC is linked to the loss of AR-mediated repression during castration.
- Sox2 may drive castration resistance through mechanisms independent of canonical embryonic stem cell pathways.
- Targeting Sox2 or its associated pathways presents a potential therapeutic strategy for CRPC.
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