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Therapeutic biomarkers in metastatic castration-resistant prostate cancer: does the state matter?
Peter H J Slootbeek1, Sofie H Tolmeijer1, Niven Mehra1
1Department of Medical Oncology, Radboud university medical center, Nijmegen, The Netherland.
Abstract:
The treatment of metastatic castration-resistant prostate cancer (mCRPC) has been fundamentally transformed by our greater understanding of its complex biological mechanisms and its entrance into the era of precision oncology. A broad aim is to use the extreme heterogeneity of mCRPC by matching already approved or new targeted therapies to the correct tumor genotype. To achieve this, tumor DNA must be obtained, sequenced, and correctly interpreted, with individual aberrations explored for their druggability, taking into account the hierarchy of driving molecular pathways. Although tumor tissue sequencing is the gold standard, tumor tissue can be challenging to obtain, and a biopsy from one metastatic site or primary tumor may not provide an accurate representation of the current genetic underpinning. Sequencing of circulating tumor DNA (ctDNA) might catalyze precision oncology in mCRPC, as it enables real-time observation of genomic changes in tumors and allows for monitoring of treatment response and identification of resistance mechanisms. Moreover, ctDNA can be used to identify mutations that may not be detected in solitary metastatic lesions and can provide a more in-depth understanding of inter- and intra-tumor heterogeneity. Finally, ctDNA abundance can serve as a prognostic biomarker in patients with mCRPC.The androgen receptor (AR)-axis is a well-established therapeutical target for prostate cancer, and through ctDNA sequencing, insights have been obtained in (temporal) resistance mechanisms that develop through castration resistance. New third-generation AR-axis inhibitors are being developed to overcome some of these resistance mechanisms. The druggability of defects in the DNA damage repair machinery has impacted the treatment landscape of mCRPC in recent years. For patients with deleterious gene aberrations in genes linked to homologous recombination, particularly BRCA1 or BRCA2, PARP inhibitors have shown efficacy compared to the standard of care armamentarium, but platinum-based chemotherapy may be equally effective. A hierarchy exists in genes associated with homologous recombination, where, besides the canonical genes in this pathway, not every other gene aberration predicts the same likelihood of response. Moreover, evidence is emerging on cross-resistance between therapies such as PARP inhibitors, platinum-based chemotherapy and even radioligand therapy that target this genotype. Mismatch repair-deficient patients can experience a beneficial response to immune checkpoint inhibitors. Activation of other cellular signaling pathways such as PI3K, cell cycle, and MAPK have shown limited success with monotherapy, but there is potential in co-targeting these pathways with combination therapy, either already witnessed or anticipated. This review outlines precision medicine in mCRPC, zooming in on the role of ctDNA, to identify genomic biomarkers that may be used to tailor molecularly targeted therapies. The most common druggable pathways and outcomes of therapies matched to these pathways are discussed.
Insights
Precision oncology transforms metastatic castration-resistant prostate cancer (mCRPC) treatment by matching targeted therapies to tumor genotypes using circulating tumor DNA (ctDNA). ctDNA offers real-time genomic insights, aiding treatment monitoring and resistance identification in mCRPC.
Area of Science:
- Oncology
- Genomics
- Precision Medicine
Background:
- Metastatic castration-resistant prostate cancer (mCRPC) treatment is evolving with precision oncology.
- Tumor heterogeneity necessitates matching therapies to specific tumor genotypes.
- Circulating tumor DNA (ctDNA) offers a dynamic approach to understanding mCRPC's genomic landscape.
Purpose of the Study:
- To review the role of ctDNA in advancing precision oncology for mCRPC.
- To identify genomic biomarkers for tailoring molecularly targeted therapies in mCRPC.
- To discuss druggable pathways and therapy outcomes in mCRPC.
Main Methods:
- Review of current literature on mCRPC, precision oncology, and ctDNA.
- Analysis of genomic alterations and their therapeutic implications.
- Discussion of targeted therapies, including AR-axis inhibitors, PARP inhibitors, and immune checkpoint inhibitors.
Main Results:
- ctDNA sequencing enables real-time monitoring of genomic changes and resistance mechanisms in mCRPC.
- Defects in DNA damage repair, particularly BRCA1/2 mutations, identify patients who may benefit from PARP inhibitors or platinum-based chemotherapy.
- Mismatch repair-deficient mCRPC may respond to immune checkpoint inhibitors.
Conclusions:
- ctDNA is a powerful tool for catalyzing precision oncology in mCRPC.
- Tailoring therapies based on ctDNA-identified biomarkers can improve treatment outcomes.
- Understanding tumor heterogeneity and resistance mechanisms through ctDNA is crucial for effective mCRPC management.
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