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Collocation of androgen receptor gene mutations in prostate cancer
G Buchanan1, N M Greenberg, H I Scher
1Flinders Cancer Centre, Flinders University and Flinders Medical Centre, Adelaide SA 5042, Australia.
Abstract:
Consistent with both the development of the normal prostate gland and prostate tumorigenesis being dependent on testicular androgens, targeting the androgen-signaling axis (i.e., androgen ablation therapy) remains the predominant treatment regime for patients with metastatic prostate cancer. Although there is a very good initial response to androgen ablation, these treatments are essentially palliative. Recent evidence suggests that treatment failure may not result from a loss of androgen signaling but, rather, from the acquisition of genetic changes that lead to aberrant activation of the androgen-signaling axis. A consistent finding is that androgen receptor (AR) gene mutations, present in metastatic prostate cancer and in human prostate cancer cell lines as well as in xenograft and other animal models, result in decreased specificity of ligand-binding and inappropriate receptor activation by estrogens, progestins, adrenal androgens, glucocorticoids and/or AR antagonists. Because a significant proportion of missense mutations in the AR gene reported in prostate cancer collocate to the signature sequence and AF-2, two discrete regions of the ligand-binding domain critical for androgen signaling, we recently proposed that collocation of mutations identified in prostate cancer would identify additional regions of the AR important in receptor function. This approach led to the identification of a four-amino acid region at the boundary of the hinge and ligand-binding domains of the receptor that forms half of a potential protein-protein binding site. AR gene mutations have also been identified that collocate to areas in the DNA-binding domain, to the NH(2)-terminal transactivation domain, and to the hinge region in prostate tumors. In nearly every case, missense mutations in the AR gene identified in prostate cancer that collocate to discrete regions of the receptor contribute to altered androgen signaling and provide a potential mechanism to explain the reemergence of tumor growth during the course of hormone ablation therapies.
Insights
Prostate cancer treatment resistance may stem from androgen receptor (AR) gene mutations. These mutations alter AR signaling, potentially explaining tumor regrowth during hormone therapy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Androgen signaling is crucial for prostate cancer development and progression.
- Androgen ablation therapy is the primary treatment for metastatic prostate cancer, but resistance often develops.
- Treatment failure may involve aberrant androgen receptor (AR) activation due to genetic mutations.
Purpose of the Study:
- To investigate the role of AR gene mutations in prostate cancer treatment resistance.
- To identify specific regions of the AR important for receptor function and signaling alterations.
Main Methods:
- Analysis of AR gene mutations in prostate cancer tissues and cell lines.
- Mapping mutation locations within the AR gene, focusing on critical domains like the ligand-binding domain (LBD).
- Correlating mutation sites with altered receptor activity and ligand binding specificity.
Main Results:
- AR gene mutations are frequently found in metastatic prostate cancer and models.
- Mutations in the AR LBD, particularly near the signature sequence and AF-2, decrease ligand-binding specificity.
- Identified a novel four-amino acid region at the hinge-LBD boundary involved in protein-protein interactions.
- Mutations in other AR domains (DNA-binding, N-terminal, hinge) also contribute to altered signaling.
Conclusions:
- AR gene mutations play a significant role in the development of resistance to androgen ablation therapy.
- Altered AR signaling due to mutations provides a mechanism for tumor recurrence during treatment.
- Targeting mutated AR or understanding its aberrant activation pathways may offer new therapeutic strategies.