Related Experiment Video
Updated: Aug 9, 2025

Serum and Plasma Copy Number Detection Using Real-time PCR
Published on: December 15, 2017
DNA repair deficiency as circulating biomarker in prostate cancer
Martina Catalano1, Daniele Generali2, Marta Gatti3
1School of Human Health Sciences, University of Florence, Florence, Italy.
Abstract:
Deleterious aberrations in DNA repair genes are actionable in approximately 25% of metastatic castration-resistant prostate cancers (mCRPC) patients. Homology recombination repair (HRR) is the DNA damage repair (DDR) mechanism most frequently altered in prostate cancer; of note BRCA2 is the most frequently altered DDR gene in this tumor. Poly ADP-ribose polymerase inhibitors showed antitumor activity with a improvement in overall survival in mCRPC carrying somatic and/or germline alterations of HHR. Germline mutations are tested on peripheral blood samples using DNA extracted from peripheral blood leukocytes, while the somatic alterations are assessed by extracting DNA from a tumor tissue sample. However, each of these genetic tests have some limitations: the somatic tests are related to the sample availability and tumor heterogeneity, while the germline testing are mainly related to the inability to detect somatic HRR mutations. Therefore, the liquid biopsy, a non-invasive and easily repeatable test compared to tissue test, could identified somatic mutation detected on the circulating tumor DNA (ctDNA) extracted from a plasma. This approach should better represent the heterogeneity of the tumor compared to the primary biopsy and maybe helpful in monitoring the onset of potential mutations involved in treatment resistance. Furthermore, ctDNA may inform about timing and potential cooperation of multiple driver genes aberration guiding the treatment options in patients with mCRPC. However, the clinical use of ctDNA test in prostate cancer compared to blood and tissue testing are currently very limited. In this review, we summarize the current therapeutic indications in prostate cancer patients with DDR deficiency, the recommendation for germline and somatic-genomic testing in advanced PC and the advantages of the use liquid biopsy in clinical routine for mCRPC.
Insights
Deleterious DNA repair gene aberrations are actionable in metastatic castration-resistant prostate cancer (mCRPC). Liquid biopsy using circulating tumor DNA (ctDNA) offers advantages over traditional tissue and blood tests for detecting these mutations.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Approximately 25% of metastatic castration-resistant prostate cancer (mCRPC) patients have actionable DNA repair gene aberrations.
- Homology recombination repair (HRR) genes, particularly BRCA2, are frequently altered in prostate cancer.
- Poly ADP-ribose polymerase inhibitors demonstrate antitumor activity in mCRPC with HRR alterations.
Purpose of the Study:
- To review current therapeutic indications for DNA damage repair (DDR) deficiency in prostate cancer.
- To outline recommendations for germline and somatic-genomic testing in advanced prostate cancer.
- To highlight the advantages of liquid biopsy for mCRPC clinical routine.
Main Methods:
- Review of current literature on genetic testing and therapeutic strategies in mCRPC.
- Comparison of limitations associated with germline and somatic mutation testing.
- Exploration of circulating tumor DNA (ctDNA) analysis via liquid biopsy.
Main Results:
- Germline testing uses peripheral blood, while somatic testing uses tumor tissue, each with limitations.
- Liquid biopsy (ctDNA) offers a non-invasive method to detect somatic mutations, potentially reflecting tumor heterogeneity.
- ctDNA may aid in monitoring treatment resistance and guiding therapy by identifying multiple driver gene aberrations.
Conclusions:
- Liquid biopsy presents a promising, repeatable approach for mCRPC genetic profiling.
- Further clinical integration of ctDNA testing is needed to fully leverage its benefits in prostate cancer management.
- Understanding DDR deficiency and utilizing advanced genomic testing, including liquid biopsy, can optimize treatment strategies for mCRPC.

