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DNA Damage Repair Defects and Targeted Radionuclide Therapies for Prostate Cancer: Does Mutation Really Matter? A
Luca Filippi1, Barbara Palumbo2, Oreste Bagni1
1Nuclear Medicine Unit, "Santa Maria Goretti" Hospital, Via Antonio Canova, 04100 Latina, Italy.
Abstract:
The aim of the present review was to assess the impact of DNA damage repair (DDR) mutations on response and outcome of patients (pts) affected by advanced prostate cancer (PCa) submitted to radionuclide therapies with [223Ra]RaCl2 (223Ra-therapy) or prostate specific membrane antigen (PSMA) ligands. A systematic literature search according to PRISMA criteria was made by using two main databases. Only studies published up until to October 2022 in the English language with ≥10 enrolled patients were selected. Seven studies including 326 pts, of whom 201 (61.6%) harboring DDR defects, were selected. The majority of selected papers were retrospective and four out of seven (57.1%) had small sample size (<50 pts). Three out of seven (42.8%) studies reported a more favorable outcome (overall or progression free survival) after therapy with alpha emitters (223Ra-therapy or [225Ac]Ac-PSMA-617) in subjects with DDR defects with respect to those without mutations. In two studies employing alpha or beta emitters ([177Lu]/[225Ac]-PMSA), no significant benefit was registered in pts harboring DDR defects. In all but one paper, no significant difference in response rate was reported among pts with or without DDR mutations. Although preliminary and biased by the retrospective design, preliminary data suggest a trend towards a longer survival in PCa pts harboring DDR defects submitted to radionuclide targeted therapy with alpha emitters.
Insights
Patients with advanced prostate cancer (PCa) and DNA damage repair (DDR) mutations may benefit from alpha-emitter radionuclide therapy. Preliminary data suggest a trend towards longer survival in these patients receiving targeted therapies.
Area of Science:
- Oncology
- Nuclear Medicine
- Genetics
Background:
- Advanced prostate cancer (PCa) presents treatment challenges.
- Targeted radionuclide therapies are emerging treatment options for PCa.
- DNA damage repair (DDR) mutations may influence treatment response.
Purpose of the Study:
- To review the impact of DDR mutations on patient outcomes with [223Ra]RaCl2 or PSMA-targeted radionuclide therapies.
- To assess the efficacy of radionuclide therapies in advanced PCa patients with DDR defects.
Main Methods:
- Systematic literature search of two databases up to October 2022.
- Included studies published in English with ≥10 patients.
- Focused on therapies using [223Ra]RaCl2 or PSMA-targeted ligands.
Main Results:
- Seven studies with 326 patients (61.6% with DDR defects) were included.
- Three studies showed improved survival with alpha-emitters in DDR-mutated patients.
- No significant survival benefit was observed in two studies using mixed alpha/beta emitters.
- Response rates were similar between patients with and without DDR mutations in most studies.
Conclusions:
- Preliminary evidence suggests a potential survival benefit for advanced PCa patients with DDR defects undergoing alpha-emitter radionuclide therapy.
- Further prospective studies are needed to confirm these findings due to the retrospective nature of current data.
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