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Updated: Jun 21, 2026

Enhancing Prostate Tumor Biobanking Reliability with Improved Sampling Technique and Histological Characterization
Published on: November 17, 2023
Molecular biology underlying the clinical heterogeneity of prostate cancer: an update
A Craig Mackinnon1, Benjamin C Yan, Loren J Joseph
1Department of Pathology, University of Chicago, Chicago, Illinois, USA.
Context:
Recent studies have uncovered a number of possible mechanisms by which prostate cancers can become resistant to systemic androgen deprivation, most involving androgen-independent reactivation of the androgen receptor. Genome-wide expression analysis with microarrays has identified a wide array of genes that are differentially expressed in metastatic prostate cancers compared to primary nonrecurrent tumors. Recently, recurrent gene fusions between TMPRSS2 and ETS family genes have been identified and extensively studied for their role in prostatic carcinoma.
Objective:
To review the recent developments in the molecular biology of prostate cancer, including those pertaining to the androgen receptor and the newly identified TMPRSS2-related translocations.
Data Sources:
Literature review and personal experience.
Conclusions:
Prostatic adenocarcinoma is a heterogeneous group of neoplasms with a broad spectrum of pathologic and molecular characteristics and clinical behaviors. Numerous mechanisms contribute to the development of resistance to androgen ablation therapy, resulting in ligand-independent reactivation of the androgen receptor, including amplification, mutation, phosphorylation, and activation of coreceptors. Multiple translocations of members of the ETS oncogene family are present in approximately half of clinically localized prostate cancers. TMPRSS2:ERG gene rearrangement appears to be an early event in prostate cancer and is not observed in benign or hyperplastic prostatic epithelium. Duplication of TMPRSS2:ERG appears to predict a worse prognosis. The relationship between TMPRSS2:ERG gene rearrangement and other morphologic and prognostic parameters of prostate cancer is still unclear.
Insights
Prostate cancer resistance to androgen deprivation therapy involves androgen receptor reactivation. TMPRSS2:ERG gene fusions are early events in prostate cancer, with duplications potentially indicating a worse prognosis.
Area of Science:
- Molecular biology of cancer
- Prostate cancer research
- Genomic alterations in cancer
Background:
- Prostate cancer often develops resistance to androgen deprivation therapy.
- Mechanisms include androgen receptor reactivation.
- Gene expression analysis reveals differences in metastatic vs. primary tumors.
Purpose of the Study:
- Review recent molecular biology advancements in prostate cancer.
- Focus on androgen receptor pathways and TMPRSS2 translocations.
Main Methods:
- Literature review
- Analysis of personal experience
Main Results:
- Prostate adenocarcinoma is molecularly diverse.
- Androgen receptor reactivation involves amplification, mutation, phosphorylation, and coreceptor activation.
- ETS gene family translocations, particularly TMPRSS2:ERG, occur in about half of localized prostate cancers.
- TMPRSS2:ERG rearrangement is an early event, absent in benign prostate tissue.
- TMPRSS2:ERG duplication may predict a poorer prognosis.
Conclusions:
- Prostate cancer heterogeneity impacts clinical behavior.
- Multiple pathways lead to androgen deprivation resistance.
- TMPRSS2:ERG gene rearrangement is a significant early event in prostate cancer development.
- Further research is needed to clarify the prognostic implications of TMPRSS2:ERG rearrangement.
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