Current Status and Future Perspectives of Checkpoint Inhibitor Immunotherapy for Prostate Cancer: A Comprehensive Review
Abstract
:1. Introduction
2. Pathophysiology of Prostate Cancer
3. Immunotherapy Resistance of Prostate Cancer
4. Immune Checkpoint Inhibitors for the Treatment of Prostate Cancer
4.1. ICI Monotherapy
4.2. Combination Immunotherapy Regimens
4.3. The Utilization of Genomic Selection for Checkpoint Inhibitor Immunotherapy
4.4. Adoptive Cellular Therapy in the Treatment of Prostate Cancer
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Agent | Mechanism | Clinical Phase | Identifier | Indication | Primary Endpoints |
---|---|---|---|---|---|
Ipilimumab | Immunotherapy + radiotherapy | I/II | NCT00323882 [72] | Metastatic CRPC | AE, PSA response, and tumor response |
Ipilimumab | Immunotherapy | III | NCT00861614 (CA184-043) [67] | Metastatic CRPC, post-docetaxel | OS |
Ipilimumab | Immunotherapy | III | NCT01057810 [65] | Metastatic CPRC, chemotherapy-naïve | OS |
Nivolumab | Immunotherapy | Ib | NCT00730639 (MDX-1106) [68] | CRPC | Safety, antitumor activity, and pharmacokinetic properties |
Pembrolizumab | Immunotherapy | Ib | NCT02054806 (KEYNOTE-028) [66] | Advanced prostate cancer with PD-L1 expression ≥ 1% of tumor or stromal cells | ORR |
Combination Agents | Mechanism | Clinical Phase | Trial ID | Indication | Primary Endpoints |
---|---|---|---|---|---|
Ipilimumab + nivolumab | Dual checkpoint blockade | II | NCT02985957 (CHECKMATE-650) [77] | Metastatic CRPC | ORR and rPFS |
Ipilimumab + GVAX | Vaccination + immunotherapy | I | NCT01510288 [78] | Metastatic CRPC | AE |
Ipilimumab + nivolumab | Dual checkpoint blockade | II | NCT02601014 (STARVE-PC) [79] | Metastatic CRPC with detectable AR-V7 transcript | PSA response |
Ipilimumab + nivolumab | Dual checkpoint blockade | II | NCT03061539 (NEPTUNES) [80] | Metastatic CRPC with TMB | CRR |
Pembrolizumab + enzalutamide | Checkpoint blockade + ADT | Ib/II | NCT02861573 (KEYNOTE-365) [82] | Metastatic CRPC | AE, PSA response, ORR |
Pembrolizumab + enzalutamide | Checkpoint blockade + ADT | III | NCT03834493 (KEYNOTE-641) [83] | Metastatic CRPC | OS and rPFS |
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Kim, T.J.; Koo, K.C. Current Status and Future Perspectives of Checkpoint Inhibitor Immunotherapy for Prostate Cancer: A Comprehensive Review. Int. J. Mol. Sci. 2020, 21, 5484. https://doi.org/10.3390/ijms21155484
Kim TJ, Koo KC. Current Status and Future Perspectives of Checkpoint Inhibitor Immunotherapy for Prostate Cancer: A Comprehensive Review. International Journal of Molecular Sciences. 2020; 21(15):5484. https://doi.org/10.3390/ijms21155484
Chicago/Turabian StyleKim, Tae Jin, and Kyo Chul Koo. 2020. "Current Status and Future Perspectives of Checkpoint Inhibitor Immunotherapy for Prostate Cancer: A Comprehensive Review" International Journal of Molecular Sciences 21, no. 15: 5484. https://doi.org/10.3390/ijms21155484
APA StyleKim, T. J., & Koo, K. C. (2020). Current Status and Future Perspectives of Checkpoint Inhibitor Immunotherapy for Prostate Cancer: A Comprehensive Review. International Journal of Molecular Sciences, 21(15), 5484. https://doi.org/10.3390/ijms21155484