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A New Technique for Treating Low-risk Prostate Cancer—Super Active Surveillance
Published on: November 7, 2025
Treatment strategies for DNA repair-deficient prostate cancer
Benjamin A Teply1, Emmanuel S Antonarakis1
1a Department of Oncology , Johns Hopkins University School of Medicine , Baltimore , MD , USA.
Introduction:
Common recurrent genetic alterations have been identified in prostate cancer through comprehensive sequencing efforts, and the prevalence of mutations in DNA repair pathway genes in patients with advanced and metastatic disease approaches 20-25%. Identification of these underlying DNA repair defects may present unique treatment opportunities for patients, both in terms of standard-of-care treatments and selected investigational agents. Areas covered: We review our current understanding of the genomic landscape of prostate cancer, with special attention to alterations in DNA repair pathway genes in metastatic castration-resistant disease. For patients with tumors deficient in homologous recombination repair, potential opportunities for treatment include platinum chemotherapy, poly(ADP) ribose polymerase (PARP) inhibitors, bipolar androgen therapy, and maybe immune checkpoint blockade therapy. In addition, tumors with mismatch repair defects (i.e. microsatellite instability) may be particularly susceptible to checkpoint blockade immunotherapy. Expert commentary: We anticipate that genomic profiling of tumors will become necessary to guide treatment of advanced prostate cancer in the coming years. Work is needed to define the optimal tissue to test, and to define the natural history of tumors with specific genetic defects. The prognostic and therapeutic importance of germline vs somatic DNA repair alterations, and mono-allelic vs bi-allelic inactivation, also remains unclear. Finally, optimal strategies to sequence or combine targeted agents for these patients with 'actionable' mutations are now needed.
Insights
Identifying DNA repair gene mutations in advanced prostate cancer offers new treatment options. Genomic profiling will guide therapy for metastatic castration-resistant prostate cancer patients with these actionable mutations.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Prostate cancer harbors common genetic alterations, with 20-25% of advanced/metastatic cases showing DNA repair gene mutations.
- These DNA repair defects present potential therapeutic targets for both standard and investigational treatments.
Purpose of the Study:
- To review the genomic landscape of prostate cancer, focusing on DNA repair gene alterations in metastatic castration-resistant disease.
- To explore potential treatment opportunities based on identified DNA repair deficiencies.
Main Methods:
- Review of current understanding of prostate cancer genomics.
- Analysis of alterations in DNA repair pathway genes in metastatic castration-resistant prostate cancer.
Main Results:
- Homologous recombination repair deficient tumors may respond to platinum chemotherapy, PARP inhibitors, bipolar androgen therapy, and potentially immunotherapy.
- Mismatch repair deficient tumors (microsatellite instability) may be susceptible to immune checkpoint blockade therapy.
Conclusions:
- Genomic profiling is expected to become essential for guiding advanced prostate cancer treatment.
- Further research is needed to determine optimal testing tissues, natural history of specific genetic defects, and the role of germline vs. somatic alterations.
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