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Updated: Jul 13, 2025

Author Spotlight: Exploring the Role of FAM83A in Cervical Cancer
Published on: February 9, 2024
Loss of feedback regulation between FAM3B and androgen receptor driving prostate cancer progression
Tianfang Ma1,2, Lianjin Jin1,2, Shanshan Bai1
1Department of Structural and Cellular Biology, Tulane University School of Medicine, Tulane Cancer Center, New Orleans, LA, USA.
Background:
Although the fusion of the transmembrane serine protease 2 gene (TMPRSS2) with the erythroblast transformation-specific-related gene (ERG), or TMPRSS2-ERG, occurs frequently in prostate cancer, its impact on clinical outcomes remains controversial. Roughly half of TMPRSS2-ERG fusions occur through intrachromosomal deletion of interstitial genes and the remainder via insertional chromosomal rearrangements. Because prostate cancers with deletion-derived TMPRSS2-ERG fusions are more aggressive than those with insertional fusions, we investigated the impact of interstitial gene loss on prostate cancer progression.
Methods:
We conducted an unbiased analysis of transcriptome data from large collections of prostate cancer samples and employed diverse in vitro and in vivo models combined with genetic approaches to characterize the interstitial gene loss that imposes the most important impact on clinical outcome.
Results:
This analysis identified FAM3B as the top-ranked interstitial gene whose loss is associated with a poor prognosis. The association between FAM3B loss and poor clinical outcome extended to fusion-negative prostate cancers where FAM3B downregulation occurred through epigenetic imprinting. Importantly, FAM3B loss drives disease progression in prostate cancer. FAM3B acts as an intermediator of a self-governing androgen receptor feedback loop. Specifically, androgen receptor upregulates FAM3B expression by binding to an intronic enhancer to induce an enhancer RNA and facilitate enhancer-promoter looping. FAM3B, in turn, attenuates androgen receptor signaling.
Conclusion:
Loss of FAM3B in prostate cancer, whether through the TMPRSS2-ERG translocation or epigenetic imprinting, causes an exit from this autoregulatory loop to unleash androgen receptor activity and prostate cancer progression. These findings establish FAM3B loss as a new driver of prostate cancer progression and support the utility of FAM3B loss as a biomarker to better define aggressive prostate cancer.
Insights
Loss of the FAM3B gene in prostate cancer, linked to TMPRSS2-ERG fusions or epigenetic changes, drives disease progression by disrupting androgen receptor signaling, highlighting FAM3B loss as a biomarker for aggressive prostate cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The TMPRSS2-ERG fusion is common in prostate cancer, but its clinical impact is debated.
- Prostate cancers with deletion-derived TMPRSS2-ERG fusions are more aggressive.
- Interstitial gene loss was investigated as a driver of prostate cancer progression.
Purpose of the Study:
- To identify interstitial genes whose loss impacts prostate cancer clinical outcomes.
- To investigate the role of interstitial gene loss in prostate cancer progression.
Main Methods:
- Unbiased transcriptome data analysis of prostate cancer samples.
- In vitro and in vivo models.
- Genetic approaches to characterize interstitial gene loss.
Main Results:
- FAM3B loss was identified as a significant indicator of poor prognosis in prostate cancer.
- FAM3B downregulation, via epigenetic imprinting, also correlated with poor outcomes in fusion-negative cancers.
- FAM3B loss drives prostate cancer progression by disrupting the androgen receptor feedback loop.
Conclusions:
- Loss of FAM3B, through TMPRSS2-ERG translocation or epigenetic imprinting, dysregulates the androgen receptor feedback loop, promoting prostate cancer progression.
- FAM3B loss is a novel driver of prostate cancer progression.
- FAM3B loss serves as a potential biomarker for identifying aggressive prostate cancer.
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