Application of Advanced Imaging to Prostate Cancer Diagnosis and Management: A Narrative Review of Current Practice and Unanswered Questions
Abstract
:1. Introduction
2. The Role of MRI in Contemporary Prostate Cancer Management
2.1. MRI for Prostate Cancer Diagnosis, Staging, and Risk Stratification
2.2. Use of MRI Prior to and during Active Surveillance
2.3. Assessment of Recurrent Prostate Cancer by MRI
3. The Role of Molecular Imaging in Contemporary Prostate Cancer Management
3.1. Overview of Commonly Used Prostate Cancer Molecular Imaging Agents
3.2. Molecular Imaging for Initial Staging of Prostate Cancer
3.3. Assessment of Biochemical Recurrence or High-Risk Postoperative Patients
3.4. Interpretation of Post-Treatment Molecular Imaging
3.5. Unexpected Findings
3.6. Ongoing Considerations for Prostate Molecular Imaging
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
AJCC | American Joint Committee on Cancer |
AS | Active Surveillance |
ASTRO | American Society for Radiation Oncology |
AUA | American Urological Association |
AUC | Area Under the Curve |
BCR | Biochemical Recurrence |
BRFS | Biochemical Recurrence-Free Survival |
CT | Computed Tomography |
DRE | Digital Rectal Exam |
EAU | European Association of Urology |
FDA | Food and Drug Administration |
MR | Magnetic Resonance |
MRI | Magnetic Resonance Imaging |
NCCN | National Comprehensive Cancer Network |
NCI | National Cancer Institute |
PET | Positron Emission Tomography |
PIRADS | Prostate Imaging Reporting & Data System |
PSA | Prostate-Specific Antigen |
PSMA | Prostate-Specific Membrane Antigen |
T2W | T2-Weighted |
TRUS | Trans-Rectal Ultrasound |
UK | United Kingdom |
US | United States |
References
- Siegel, R.L.; Miller, K.D.; Wagle, N.S.; Jemal, A. Cancer statistics, 2023. CA Cancer J. Clin. 2023, 73, 17–48. [Google Scholar] [CrossRef] [PubMed]
- Schaeffer, E.M.; Srinivas, S.; Adra, N.; An, Y.; Barocas, D.; Bitting, R.; Bryce, A.; Chapin, B.; Cheng, H.H.; D’Amico, A.V.; et al. Prostate Cancer, Version 4.2023. J. Natl. Compr. Cancer Netw. 2023, 21, 1067–1096. [Google Scholar] [CrossRef] [PubMed]
- Eastham, J.A.; Auffenberg, G.B.; Barocas, D.A.; Chou, R.; Crispino, T.; Davis, J.W.; Eggener, S.; Horwitz, E.M.; Kane, C.J.; Kirkby, E.; et al. Clinically Localized Prostate Cancer: AUA/ASTRO Guideline, Part I: Introduction, Risk Assessment, Staging, and Risk-Based Management. J. Urol. 2022, 208, 10–18. [Google Scholar] [CrossRef] [PubMed]
- Mottet, N.; van den Bergh, R.C.N.; Briers, E.; Van den Broeck, T.; Cumberbatch, M.G.; De Santis, M.; Fanti, S.; Fossati, N.; Gandaglia, G.; Gillessen, S.; et al. EAU-EANM-ESTRO-ESUR-SIOG Guidelines on Prostate Cancer-2020 Update. Part 1: Screening, Diagnosis, and Local Treatment with Curative Intent. Eur. Urol. 2021, 79, 243–262. [Google Scholar] [CrossRef] [PubMed]
- Dasgupta, P.; Davis, J.; Hughes, S. NICE guidelines on prostate cancer 2019. BJU Int. 2019, 124, 1. [Google Scholar] [CrossRef] [PubMed]
- Kasivisvanathan, V.; Rannikko, A.S.; Borghi, M.; Panebianco, V.; Mynderse, L.A.; Vaarala, M.H.; Briganti, A.; Budaus, L.; Hellawell, G.; Hindley, R.G.; et al. MRI-Targeted or Standard Biopsy for Prostate-Cancer Diagnosis. N. Engl. J. Med. 2018, 378, 1767–1777. [Google Scholar] [CrossRef] [PubMed]
- Siddiqui, M.M.; Rais-Bahrami, S.; Turkbey, B.; George, A.K.; Rothwax, J.; Shakir, N.; Okoro, C.; Raskolnikov, D.; Parnes, H.L.; Linehan, W.M.; et al. Comparison of MR/ultrasound fusion-guided biopsy with ultrasound-guided biopsy for the diagnosis of prostate cancer. JAMA 2015, 313, 390–397. [Google Scholar] [CrossRef]
- Rouviere, O.; Puech, P.; Renard-Penna, R.; Claudon, M.; Roy, C.; Mege-Lechevallier, F.; Decaussin-Petrucci, M.; Dubreuil-Chambardel, M.; Magaud, L.; Remontet, L.; et al. Use of prostate systematic and targeted biopsy on the basis of multiparametric MRI in biopsy-naive patients (MRI-FIRST): A prospective, multicentre, paired diagnostic study. Lancet Oncol. 2019, 20, 100–109. [Google Scholar] [CrossRef]
- Amin, M.B.; American Joint Committee on Cancer; American Cancer Society. AJCC Cancer Staging Manual, 8th ed.; Amin, M.B., Edge, S.B., Greene, F.L., Eds.; American Joint Committee on Cancer, Springer: Chicago, IL, USA, 2017; p. xvii, 718 p. [Google Scholar]
- Parker, C.C.; James, N.D.; Brawley, C.D.; Clarke, N.W.; Hoyle, A.P.; Ali, A.; Ritchie, A.W.S.; Attard, G.; Chowdhury, S.; Cross, W.; et al. Radiotherapy to the primary tumour for newly diagnosed, metastatic prostate cancer (STAMPEDE): A randomised controlled phase 3 trial. Lancet 2018, 392, 2353–2366. [Google Scholar] [CrossRef]
- Soeterik, T.F.W.; van Melick, H.H.E.; Dijksman, L.M.; Biesma, D.H.; Witjes, J.A.; van Basten, J.A. Multiparametric Magnetic Resonance Imaging Should Be Preferred Over Digital Rectal Examination for Prostate Cancer Local Staging and Disease Risk Classification. Urology 2021, 147, 205–212. [Google Scholar] [CrossRef]
- Draulans, C.; Everaerts, W.; Isebaert, S.; Gevaert, T.; Oyen, R.; Joniau, S.; Lerut, E.; De Wever, L.; Weynand, B.; Vanhoutte, E.; et al. Impact of Magnetic Resonance Imaging on Prostate Cancer Staging and European Association of Urology Risk Classification. Urology 2019, 130, 113–119. [Google Scholar] [CrossRef] [PubMed]
- Smith, D.S.; Catalona, W.J. Interexaminer variability of digital rectal examination in detecting prostate cancer. Urology 1995, 45, 70–74. [Google Scholar] [CrossRef] [PubMed]
- Wen, J.; Ji, Y.; Han, J.; Shen, X.; Qiu, Y. Inter-reader agreement of the prostate imaging reporting and data system version v2.1 for detection of prostate cancer: A systematic review and meta-analysis. Front. Oncol. 2022, 12, 1013941. [Google Scholar] [CrossRef]
- Ball, M.W.; Partin, A.W.; Epstein, J.I. Extent of extraprostatic extension independently influences biochemical recurrence-free survival: Evidence for further pT3 subclassification. Urology 2015, 85, 161–164. [Google Scholar] [CrossRef] [PubMed]
- Sung, M.T.; Lin, H.; Koch, M.O.; Davidson, D.D.; Cheng, L. Radial distance of extraprostatic extension measured by ocular micrometer is an independent predictor of prostate-specific antigen recurrence: A new proposal for the substaging of pT3a prostate cancer. Am. J. Surg. Pathol. 2007, 31, 311–318. [Google Scholar] [CrossRef]
- Flegar, L.; Zacharis, A.; Aksoy, C.; Heers, H.; Derigs, M.; Eisenmenger, N.; Borkowetz, A.; Groeben, C.; Huber, J. Alternative- and focal therapy trends for prostate cancer: A total population analysis of in-patient treatments in Germany from 2006 to 2019. World J. Urol. 2022, 40, 1645–1652. [Google Scholar] [CrossRef] [PubMed]
- Stamatakis, L.; Siddiqui, M.M.; Nix, J.W.; Logan, J.; Rais-Bahrami, S.; Walton-Diaz, A.; Hoang, A.N.; Vourganti, S.; Truong, H.; Shuch, B.; et al. Accuracy of multiparametric magnetic resonance imaging in confirming eligibility for active surveillance for men with prostate cancer. Cancer 2013, 119, 3359–3366. [Google Scholar] [CrossRef] [PubMed]
- Ouzzane, A.; Renard-Penna, R.; Marliere, F.; Mozer, P.; Olivier, J.; Barkatz, J.; Puech, P.; Villers, A. Magnetic Resonance Imaging Targeted Biopsy Improves Selection of Patients Considered for Active Surveillance for Clinically Low Risk Prostate Cancer Based on Systematic Biopsies. J. Urol. 2015, 194, 350–356. [Google Scholar] [CrossRef]
- Eineluoto, J.T.; Jarvinen, P.; Kenttamies, A.; Kilpelainen, T.P.; Vasarainen, H.; Sandeman, K.; Erickson, A.; Mirtti, T.; Rannikko, A. Repeat multiparametric MRI in prostate cancer patients on active surveillance. PLoS ONE 2017, 12, e0189272. [Google Scholar] [CrossRef]
- Walton Diaz, A.; Shakir, N.A.; George, A.K.; Rais-Bahrami, S.; Turkbey, B.; Rothwax, J.T.; Stamatakis, L.; Hong, C.W.; Siddiqui, M.M.; Okoro, C.; et al. Use of serial multiparametric magnetic resonance imaging in the management of patients with prostate cancer on active surveillance. Urol. Oncol. 2015, 33, 202.e1–202.e7. [Google Scholar] [CrossRef]
- Chesnut, G.T.; Vertosick, E.A.; Benfante, N.; Sjoberg, D.D.; Fainberg, J.; Lee, T.; Eastham, J.; Laudone, V.; Scardino, P.; Touijer, K.; et al. Role of Changes in Magnetic Resonance Imaging or Clinical Stage in Evaluation of Disease Progression for Men with Prostate Cancer on Active Surveillance. Eur. Urol. 2020, 77, 501–507. [Google Scholar] [CrossRef]
- Midiri, F.; Vernuccio, F.; Purpura, P.; Alongi, P.; Bartolotta, T.V. Multiparametric MRI and Radiomics in Prostate Cancer: A Review of the Current Literature. Diagnostics 2021, 11, 1829. [Google Scholar] [CrossRef]
- Recabal, P.; Assel, M.; Sjoberg, D.D.; Lee, D.; Laudone, V.P.; Touijer, K.; Eastham, J.A.; Vargas, H.A.; Coleman, J.; Ehdaie, B. The Efficacy of Multiparametric Magnetic Resonance Imaging and Magnetic Resonance Imaging Targeted Biopsy in Risk Classification for Patients with Prostate Cancer on Active Surveillance. J. Urol. 2016, 196, 374–381. [Google Scholar] [CrossRef]
- Casciani, E.; Polettini, E.; Carmenini, E.; Floriani, I.; Masselli, G.; Bertini, L.; Gualdi, G.F. Endorectal and dynamic contrast-enhanced MRI for detection of local recurrence after radical prostatectomy. AJR Am. J. Roentgenol. 2008, 190, 1187–1192. [Google Scholar] [CrossRef]
- Kim, M.; Hwang, S.I.; Ahn, H.; Lee, H.J.; Byun, S.S.; Hong, S.K.; Lee, S. Diagnostic yield of multiparametric MRI for local recurrence at biochemical recurrence after radical prostatectomy. Prostate Int. 2022, 10, 135–141. [Google Scholar] [CrossRef]
- Figler, B.D.; Reuther, A.M.; Dhar, N.; Levin, H.; Magi-Galluzzi, C.; Zhou, M.; Klein, E.A. Preoperative PSA is still predictive of cancer volume and grade in late PSA era. Urology 2007, 70, 711–716. [Google Scholar] [CrossRef]
- Westphalen, A.C.; Kurhanewicz, J.; Cunha, R.M.; Hsu, I.C.; Kornak, J.; Zhao, S.; Coakley, F.V. T2-Weighted endorectal magnetic resonance imaging of prostate cancer after external beam radiation therapy. Int. Braz. J. Urol. 2009, 35, 171–180; discussion 181–182. [Google Scholar] [CrossRef]
- Sala, E.; Eberhardt, S.C.; Akin, O.; Moskowitz, C.S.; Onyebuchi, C.N.; Kuroiwa, K.; Ishill, N.; Zelefsky, M.J.; Eastham, J.A.; Hricak, H. Endorectal MR imaging before salvage prostatectomy: Tumor localization and staging. Radiology 2006, 238, 176–183. [Google Scholar] [CrossRef]
- Regula, N.; Kostaras, V.; Johansson, S.; Trampal, C.; Lindstrom, E.; Lubberink, M.; Velikyan, I.; Sorensen, J. Comparison of (68)Ga-PSMA-11 PET/CT with (11)C-acetate PET/CT in re-staging of prostate cancer relapse. Sci. Rep. 2020, 10, 4993. [Google Scholar] [CrossRef]
- Evans, J.D.; Jethwa, K.R.; Ost, P.; Williams, S.; Kwon, E.D.; Lowe, V.J.; Davis, B.J. Prostate cancer-specific PET radiotracers: A review on the clinical utility in recurrent disease. Pract. Radiat. Oncol. 2018, 8, 28–39. [Google Scholar] [CrossRef] [PubMed]
- Czernin, J.; Benz, M.R.; Allen-Auerbach, M.S. PET Imaging of Prostate Cancer Using C-Acetate. PET Clin. 2009, 4, 163–172. [Google Scholar] [CrossRef]
- Michaud, L.; Touijer, K.A.; Mauguen, A.; Zelefsky, M.J.; Morris, M.J.; Lyashschenko, S.K.; Durack, J.C.; Humm, J.L.; Weber, W.A.; Schoder, H. (11)C-Choline PET/CT in Recurrent Prostate Cancer: Retrospective Analysis in a Large U.S. Patient Series. J. Nucl. Med. 2020, 61, 827–833. [Google Scholar] [CrossRef]
- Jani, A.B.; Schreibmann, E.; Goyal, S.; Halkar, R.; Hershatter, B.; Rossi, P.J.; Shelton, J.W.; Patel, P.R.; Xu, K.M.; Goodman, M.; et al. (18)F-fluciclovine-PET/CT imaging versus conventional imaging alone to guide postprostatectomy salvage radiotherapy for prostate cancer (EMPIRE-1): A single centre, open-label, phase 2/3 randomised controlled trial. Lancet 2021, 397, 1895–1904. [Google Scholar] [CrossRef]
- Zippel, C.; Ronski, S.C.; Bohnet-Joschko, S.; Giesel, F.L.; Kopka, K. Current Status of PSMA-Radiotracers for Prostate Cancer: Data Analysis of Prospective Trials Listed on ClinicalTrials.gov. Pharmaceuticals 2020, 13, 12. [Google Scholar] [CrossRef]
- Sheikhbahaei, S.; Afshar-Oromieh, A.; Eiber, M.; Solnes, L.B.; Javadi, M.S.; Ross, A.E.; Pienta, K.J.; Allaf, M.E.; Haberkorn, U.; Pomper, M.G.; et al. Pearls and pitfalls in clinical interpretation of prostate-specific membrane antigen (PSMA)-targeted PET imaging. Eur. J. Nucl. Med. Mol. Imaging 2017, 44, 2117–2136. [Google Scholar] [CrossRef]
- Eiber, M.; Herrmann, K.; Calais, J.; Hadaschik, B.; Giesel, F.L.; Hartenbach, M.; Hope, T.; Reiter, R.; Maurer, T.; Weber, W.A.; et al. Prostate Cancer Molecular Imaging Standardized Evaluation (PROMISE): Proposed miTNM Classification for the Interpretation of PSMA-Ligand PET/CT. J. Nucl. Med. 2018, 59, 469–478. [Google Scholar] [CrossRef]
- Cornford, P.; Briers, E.; Eberli, D.; Oldenburg, J.; Rouviere, O.; Tilki, D.; Oort, I.M.V.; Farolfi, A.; Lardas, M.; Broeck, T.V.d.; et al. EAU Prostate Cancer Guidelines. Available online: http://uroweb.org/guidelines/compilations-of-all-guidelines/ (accessed on 31 October 2023).
- Perera, M.; Papa, N.; Christidis, D.; Wetherell, D.; Hofman, M.S.; Murphy, D.G.; Bolton, D.; Lawrentschuk, N. Sensitivity, Specificity, and Predictors of Positive (68)Ga-Prostate-specific Membrane Antigen Positron Emission Tomography in Advanced Prostate Cancer: A Systematic Review and Meta-analysis. Eur. Urol. 2016, 70, 926–937. [Google Scholar] [CrossRef]
- Filippi, L.; Dimitrakopoulou-Strauss, A.; Evangelista, L.; Schillaci, O. Long axial field-of-view PET/CT devices: Are we ready for the technological revolution? Expert Rev. Med. Devices 2022, 19, 739–743. [Google Scholar] [CrossRef] [PubMed]
- Hope, T.A.; Truillet, C.; Ehman, E.C.; Afshar-Oromieh, A.; Aggarwal, R.; Ryan, C.J.; Carroll, P.R.; Small, E.J.; Evans, M.J. 68Ga-PSMA-11 PET Imaging of Response to Androgen Receptor Inhibition: First Human Experience. J. Nucl. Med. 2017, 58, 81–84. [Google Scholar] [CrossRef] [PubMed]
- Sartor, O.; de Bono, J.; Chi, K.N.; Fizazi, K.; Herrmann, K.; Rahbar, K.; Tagawa, S.T.; Nordquist, L.T.; Vaishampayan, N.; El-Haddad, G.; et al. Lutetium-177-PSMA-617 for Metastatic Castration-Resistant Prostate Cancer. N. Engl. J. Med. 2021, 385, 1091–1103. [Google Scholar] [CrossRef] [PubMed]
- Sathekge, M.; Bruchertseifer, F.; Vorster, M.; Lawal, I.O.; Knoesen, O.; Mahapane, J.; Davis, C.; Mdlophane, A.; Maes, A.; Mokoala, K.; et al. mCRPC Patients Receiving (225)Ac-PSMA-617 Therapy in the Post-Androgen Deprivation Therapy Setting: Response to Treatment and Survival Analysis. J. Nucl. Med. 2022, 63, 1496–1502. [Google Scholar] [CrossRef] [PubMed]
- McInnes, L.E.; Cullinane, C.; Roselt, P.D.; Jackson, S.; Blyth, B.J.; van Dam, E.M.; Zia, N.A.; Harris, M.J.; Hicks, R.J.; Donnelly, P.S. Therapeutic Efficacy of a Bivalent Inhibitor of Prostate-Specific Membrane Antigen Labeled with (67)Cu. J. Nucl. Med. 2021, 62, 829–832. [Google Scholar] [CrossRef] [PubMed]
- Wurzer, A.; Di Carlo, D.; Schmidt, A.; Beck, R.; Eiber, M.; Schwaiger, M.; Wester, H.J. Radiohybrid Ligands: A Novel Tracer Concept Exemplified by (18)F- or (68)Ga-Labeled rhPSMA Inhibitors. J. Nucl. Med. 2020, 61, 735–742. [Google Scholar] [CrossRef] [PubMed]
- Surasi, D.S.; Eiber, M.; Maurer, T.; Preston, M.A.; Helfand, B.T.; Josephson, D.; Tewari, A.K.; Somford, D.M.; Rais-Bahrami, S.; Koontz, B.F.; et al. Diagnostic Performance and Safety of Positron Emission Tomography with (18)F-rhPSMA-7.3 in Patients with Newly Diagnosed Unfavourable Intermediate- to Very-high-risk Prostate Cancer: Results from a Phase 3, Prospective, Multicentre Study (LIGHTHOUSE). Eur. Urol. 2023, 84, 361–370. [Google Scholar] [CrossRef]
- Murthy, V.; Maitre, P.; Kannan, S.; Panigrahi, G.; Krishnatry, R.; Bakshi, G.; Prakash, G.; Pal, M.; Menon, S.; Phurailatpam, R.; et al. Prostate-only versus whole-pelvic radiation therapy in high-risk and very high-risk prostate cancer (POP-RT): Outcomes from phase III randomized controlled trial. J. Clin. Oncol. 2021, 39, 1234–1243. [Google Scholar] [CrossRef] [PubMed]
- Cookson, M.S.; Aus, G.; Burnett, A.L.; Canby-Hagino, E.D.; D’Amico, A.V.; Dmochowski, R.R.; Eton, D.T.; Forman, J.D.; Goldenberg, S.L.; Hernandez, J.; et al. Variation in the definition of biochemical recurrence in patients treated for localized prostate cancer: The American Urological Association Prostate Guidelines for Localized Prostate Cancer Update Panel report and recommendations for a standard in the reporting of surgical outcomes. J. Urol. 2007, 177, 540–545. [Google Scholar] [CrossRef]
- Abramowitz, M.C.; Li, T.; Buyyounouski, M.K.; Ross, E.; Uzzo, R.G.; Pollack, A.; Horwitz, E.M. The Phoenix definition of biochemical failure predicts for overall survival in patients with prostate cancer. Cancer 2008, 112, 55–60. [Google Scholar] [CrossRef]
- Supiot, S.; Vaugier, L.; Pasquier, D.; Buthaud, X.; Magne, N.; Peiffert, D.; Sargos, P.; Crehange, G.; Pommier, P.; Loos, G.; et al. OLIGOPELVIS GETUG P07, a Multicenter Phase II Trial of Combined High-dose Salvage Radiotherapy and Hormone Therapy in Oligorecurrent Pelvic Node Relapses in Prostate Cancer. Eur. Urol. 2021, 80, 405–414. [Google Scholar] [CrossRef]
- De Bruycker, A.; Spiessens, A.; Dirix, P.; Koutsouvelis, N.; Semac, I.; Liefhooghe, N.; Gomez-Iturriaga, A.; Everaerts, W.; Otte, F.; Papachristofilou, A.; et al. PEACE V—Salvage Treatment of OligoRecurrent nodal prostate cancer Metastases (STORM): A study protocol for a randomized controlled phase II trial. BMC Cancer 2020, 20, 406. [Google Scholar] [CrossRef]
- Decaestecker, K.; De Meerleer, G.; Ameye, F.; Fonteyne, V.; Lambert, B.; Joniau, S.; Delrue, L.; Billiet, I.; Duthoy, W.; Junius, S.; et al. Surveillance or metastasis-directed Therapy for OligoMetastatic Prostate cancer recurrence (STOMP): Study protocol for a randomized phase II trial. BMC Cancer 2014, 14, 671. [Google Scholar] [CrossRef]
- Kneebone, A.; Hruby, G.; Ainsworth, H.; Byrne, K.; Brown, C.; Guo, L.; Guminski, A.; Eade, T. Stereotactic Body Radiotherapy for Oligometastatic Prostate Cancer Detected via Prostate-specific Membrane Antigen Positron Emission Tomography. Eur. Urol. Oncol. 2018, 1, 531–537. [Google Scholar] [CrossRef]
- Lowrance, W.; Breau, R.; Chou, R.; Chapin, B.F.; Crispino, T.; Dreicer, R.; Jarrard, D.F.; Kibel, A.S.; Morgan, T.M.; Morgans, A.K.; et al. Updates to advanced prostate cancer: AUA/SUO guidelines. J. Urol. 2023, 209, 1082–1090. [Google Scholar] [CrossRef]
- Treglia, G.; Pereira Mestre, R.; Ferrari, M.; Bosetti, D.G.; Pascale, M.; Oikonomou, E.; De Dosso, S.; Jermini, F.; Prior, J.O.; Roggero, E.; et al. Radiolabelled choline versus PSMA PET/CT in prostate cancer restaging: A meta-analysis. Am. J. Nucl. Med. Mol. Imaging 2019, 9, 127–139. [Google Scholar]
- Calais, J.; Ceci, F.; Eiber, M.; Hope, T.A.; Hofman, M.S.; Rischpler, C.; Bach-Gansmo, T.; Nanni, C.; Savir-Baruch, B.; Elashoff, D.; et al. (18)F-fluciclovine PET-CT and (68)Ga-PSMA-11 PET-CT in patients with early biochemical recurrence after prostatectomy: A prospective, single-centre, single-arm, comparative imaging trial. Lancet Oncol. 2019, 20, 1286–1294. [Google Scholar] [CrossRef]
- Scarsbrook, A.F.; Bottomley, D.; Teoh, E.J.; Bradley, K.M.; Payne, H.; Afaq, A.; Bomanji, J.; As, N.v.; Chua, S.; Hoskin, P.; et al. Effect of 18F-fluciclovine Positron Emission Tomography on the Management of Patients With Recurrence of Prostate Cancer: Results From the FALCON Trial. Int. J. Radiat. Biol. Phys. 2020, 107, 316–324. [Google Scholar] [CrossRef]
- Andriole, G.L.; Kostakoglu, L.; Chau, A.; Duan, F.; Mahmood, U.; Mankoff, D.A.; Schuster, D.M.; Siegel, B.A.; Group, L.S. The Impact of Positron Emission Tomography with 18F-Fluciclovine on the Treatment of Biochemical Recurrence of Prostate Cancer: Results from the LOCATE Trial. J. Urol. 2019, 201, 322–331. [Google Scholar] [CrossRef]
- Kneebone, A.; Fraser-Browne, C.; Duchesne, G.M.; Fisher, R.; Frydenberg, M.; Herschtal, A.; Williams, S.G.; Brown, C.; Delprado, W.; Haworth, A.; et al. Adjuvant radiotherapy versus early salvage radiotherapy following radical prostatectomy (TROG 08.03/ANZUP RAVES): A randomised, controlled, phase 3, non-inferiority trial. Lancet Oncol. 2020, 21, 1331–1340. [Google Scholar] [CrossRef]
- Sargos, P.; Chabaud, S.; Latorzeff, I.; Magne, N.; Benyoucef, A.; Supiot, S.; Pasquier, D.; Abdiche, M.S.; Gilliot, O.; Graff-Cailleaud, P.; et al. Adjuvant radiotherapy versus early salvage radiotherapy plus short-term androgen deprivation therapy in men with localised prostate cancer after radical prostatectomy (GETUG-AFU 17): A randomised, phase 3 trial. Lancet Oncol. 2020, 21, 1341–1352. [Google Scholar] [CrossRef]
- Parker, C.C.; Clarke, N.W.; Cook, A.D.; Kynaston, H.G.; Petersen, P.M.; Catton, C.; Cross, W.; Logue, J.; Parulekar, W.; Payne, H.; et al. Timing of radiotherapy after radical prostatectomy (RADICALS-RT): A randomised, controlled phase 3 trial. Lancet 2020, 396, 1413–1421. [Google Scholar] [CrossRef] [PubMed]
- Roach, P.J.; Francis, R.; Emmett, L.; Hsiao, E.; Kneebone, A.; Hruby, G.; Eade, T.; Nguyen, Q.A.; Thompson, B.D.; Cusick, T.; et al. The Impact of (68)Ga-PSMA PET/CT on Management Intent in Prostate Cancer: Results of an Australian Prospective Multicenter Study. J. Nucl. Med. 2018, 59, 82–88. [Google Scholar] [CrossRef] [PubMed]
- Alongi, P.; Laudicella, R.; Lanzafame, H.; Farolfi, A.; Mapelli, P.; Picchio, M.; Burger, I.A.; Iagaru, A.; Minutoli, F.; Evangelista, L. PSMA and Choline PET for the Assessment of Response to Therapy and Survival Outcomes in Prostate Cancer Patients: A Systematic Review from the Literature. Cancers 2022, 14, 1770. [Google Scholar] [CrossRef] [PubMed]
- Fanti, S.; Hadaschik, B.; Herrmann, K. Proposal for Systemic-Therapy Response-Assessment Criteria at the Time of PSMA PET/CT Imaging: The PSMA PET Progression Criteria. J. Nucl. Med. 2020, 61, 678–682. [Google Scholar] [CrossRef] [PubMed]
- Sutera, P.; Deek, M.P.; Guler, O.C.; Hurmuz, P.; Reyhan, M.; Rowe, S.; Hrinivich, W.T.; Ren, L.; Song, D.; Kiss, A.P.; et al. Prostate-specific membrane antigen PET response associates with metastasis-free survival following stereotactic ablative radiation therapy in oligometastatic castration-sensitive prostate cancer. Int. J. Radiat. Oncol. Biol. Phys. 2022, 114, S109–S110. [Google Scholar] [CrossRef]
- Garg, I.; Nathan, M.A.; Packard, A.T.; Kwon, E.D.; Larson, N.B.; Lowe, V.; Davis, B.J.; Haloi, R.; Mahon, M.L.; Goenka, A.H. (11)C-choline positron emission tomography/computed tomography for detection of disease relapse in patients with history of biochemically recurrent prostate cancer and prostate-specific antigen </=0.1 ng/ml. J. Cancer Res. Ther. 2021, 17, 358–365. [Google Scholar] [CrossRef] [PubMed]
- Bryce, A.H.; Alumkal, J.J.; Armstrong, A.; Higano, C.S.; Iversen, P.; Sternberg, C.N.; Rathkopf, D.; Loriot, Y.; de Bono, J.; Tombal, B.; et al. Radiographic progression with nonrising PSA in metastatic castration-resistant prostate cancer: Post hoc analysis of PREVAIL. Prostate Cancer Prostatic Dis. 2017, 20, 221–227. [Google Scholar] [CrossRef] [PubMed]
- Michalski, K.; Ruf, J.; Goetz, C.; Seitz, A.K.; Buck, A.K.; Lapa, C.; Hartrampf, P.E. Prognostic implications of dual tracer PET/CT: PSMA ligand and [(18)F]FDG PET/CT in patients undergoing [(177)Lu]PSMA radioligand therapy. Eur. J. Nucl. Med. Mol. Imaging 2021, 48, 2024–2030. [Google Scholar] [CrossRef] [PubMed]
- Sasikumar, A.; Joy, A.; Nair, B.P.; Pillai, M.R.A.; Madhavan, J. False Positive Uptake in Bilateral Gynecomastia on 68Ga-PSMA PET/CT Scan. Clin. Nucl. Med. 2017, 42, e412–e414. [Google Scholar] [CrossRef]
- Chen, M.Y.; Franklin, A.; Yaxley, J.; Gianduzzo, T.; McBean, R.; Wong, D.; Tatkovic, A.; McEwan, L.; Walters, J.; Kua, B. Solitary rib lesions showing prostate-specific membrane antigen (PSMA) uptake in pre-treatment staging (68) Ga-PSMA-11 positron emission tomography scans for men with prostate cancer: Benign or malignant? BJU Int. 2020, 126, 396–401. [Google Scholar] [CrossRef]
- Feinstein, A.R.; Sosin, D.M.; Wells, C.K. The Will Rogers Phenomenon. N. Engl. J. Med. 1985, 312, 1604–1608. [Google Scholar] [CrossRef]
- Sormani, M.P. The Will Rogers Phenomenon: The effect of different diagnostic criteria. J. Neurol. Sci. 2009, 287, S46–S49. [Google Scholar] [CrossRef]
- Albertsen, P.C.; Hanley, J.A.; Barrows, G.H.; Penson, D.F.; Kowalczyk, P.D.; Sanders, M.M.; Fine, J. Prostate cancer and the Will Rogers phenomenon. J. Natl. Cancer Inst. 2005, 97, 1248–1253. [Google Scholar] [CrossRef] [PubMed]
- Connor, M.J.; Winkler, M.; Ahmed, H.U. Survival in Oligometastatic Prostate Cancer-A New Dawn or the Will Rogers Phenomenon? JAMA Oncol. 2020, 6, 185–186. [Google Scholar] [CrossRef]
- Parker, W.P.; Davis, B.J.; Park, S.S.; Olivier, K.R.; Choo, R.; Nathan, M.A.; Lowe, V.J.; Welch, T.J.; Evans, J.D.; Harmsen, W.S.; et al. Identification of Site-specific Recurrence Following Primary Radiation Therapy for Prostate Cancer Using C-11 Choline Positron Emission Tomography/Computed Tomography: A Nomogram for Predicting Extrapelvic Disease. Eur. Urol. 2017, 71, 340–348. [Google Scholar] [CrossRef]
- Dietlein, F.; Kobe, C.; Neubauer, S.; Schmidt, M.; Stockter, S.; Fischer, T.; Schomacker, K.; Heidenreich, A.; Zlatopolskiy, B.D.; Neumaier, B.; et al. PSA-Stratified Performance of (18)F- and (68)Ga-PSMA PET in Patients with Biochemical Recurrence of Prostate Cancer. J. Nucl. Med. 2017, 58, 947–952. [Google Scholar] [CrossRef]
- Fossati, N.; Scarcella, S.; Gandaglia, G.; Suardi, N.; Robesti, D.; Boeri, L.; Karnes, R.J.; Heidenreich, A.; Pfister, D.; Kretschmer, A.; et al. Underestimation of Positron Emission Tomography/Computerized Tomography in Assessing Tumor Burden in Prostate Cancer Nodal Recurrence: Head-to-Head Comparison of (68)Ga-PSMA and (11)C-Choline in a Large, Multi-Institutional Series of Extended Salvage Lymph Node Dissections. J. Urol. 2020, 204, 296–302. [Google Scholar] [CrossRef]
- Pernthaler, B.; Kulnik, R.; Gstettner, C.; Salamon, S.; Aigner, R.M.; Kvaternik, H. A Prospective Head-to-Head Comparison of 18F-Fluciclovine With 68Ga-PSMA-11 in Biochemical Recurrence of Prostate Cancer in PET/CT. Clin. Nucl. Med. 2019, 44, e566–e573. [Google Scholar] [CrossRef]
- Leapman, M.; Ross, J.; Jeffery, M.; Gross, C.; Saperstein, L.; Karnes, R.J.; Kunst, N.; Ma, X.; Wang, S.Y.; Long, J.; et al. The Impact of Novel Positron Emission Tomography (PET) Imaging Tracers on Real-World Outcomes for Patients with Prostate Cancer. Available online: https://www.fda.gov/science-research/advancing-regulatory-science/impact-novel-positron-emission-tomography-pet-imaging-tracers-real-world-outcomes-patients-prostate (accessed on 31 October 2023).
- Xie, W.; Regan, M.M.; Buyse, M.; Halabi, S.; Kantoff, P.W.; Sartor, O.; Soule, H.; Clarke, N.W.; Collette, L.; Dignam, J.J.; et al. Metastasis-Free Survival is a Strong Surrogate of Overall Survival in Localized Prostate CAncer. J. Clin. Oncol. 2017, 35, 3097. [Google Scholar] [CrossRef]
- Halabi, S.; Roy, A.; Rydzewska, L.; Godolphin, P.; Parmar, M.K.; Hussain, M.H.; Tangen, C.; Thompson, I.; Xie, W.; Carducci, M.A.; et al. Assessing intermediate clinical endpoints (ICE) as potential surrogates for overall survival (OS) in men with metastatic hormone-sensitive prostate cancer (mHSPC). J. Clin. Oncol. 2022, 40, 5006. [Google Scholar] [CrossRef]
- Liberini, V.; Laudicella, R.; Balma, M.; Nicolotti, D.G.; Buschiazzo, A.; Grimaldi, S.; Lorenzon, L.; Bianchi, A.; Peano, S.; Bartolotta, T.V.; et al. Radiomics and artificial intelligence in prostate cancer: New tools for molecular hybrid imaging and theragnostics. Eur. Radiol. Exp. 2022, 6, 27. [Google Scholar] [CrossRef]
Initial Diagnosis | Staging and Risk Stratification | Treatment Selection | Active Surveillance | Recurrence Detection | Treatment Response Assessment | |
---|---|---|---|---|---|---|
MRI | Fusion biopsy improves clinically significant cancer detection when used as an adjunct to standard biopsy. | Assesses local extent of disease and nodal involvement. If incorporated into staging, it often upstages. | Upstaging and treatment escalation based on MR findings are controversial but increasingly common. | Fundamental in assessment of PSA or physical exam change and to guide subsequent repeat biopsy. | Assesses local recurrence. Recurrence detection improved at higher PSAs. Ideal timing of obtaining MRI is unclear. | Currently difficult to interpret in isolation but continues to evolve. |
Prostate-specific PET | Limited use/not applicable. | Primarily assesses nodal and distant metastatic disease. May be used as alternative for standard imaging of bone and soft tissue in initial staging. May also inform local disease distribution. | Presence or absence of PET-detected metastatic disease influences local vs. systemic treatment approach. | Limited use/not applicable. | Assesses local and systemic recurrence. PSMA is more sensitive than choline and fluciclovine at low PSA levels; however, there is no/limited evidence supporting treatment changes based on PSMA findings. | Choline PET is the most consistently interpretable while response assessment by PSMA remains incompletely understood. |
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McKone, E.L.; Sutton, E.A.; Johnson, G.B.; Phillips, R.M. Application of Advanced Imaging to Prostate Cancer Diagnosis and Management: A Narrative Review of Current Practice and Unanswered Questions. J. Clin. Med. 2024, 13, 446. https://doi.org/10.3390/jcm13020446
McKone EL, Sutton EA, Johnson GB, Phillips RM. Application of Advanced Imaging to Prostate Cancer Diagnosis and Management: A Narrative Review of Current Practice and Unanswered Questions. Journal of Clinical Medicine. 2024; 13(2):446. https://doi.org/10.3390/jcm13020446
Chicago/Turabian StyleMcKone, Elizabeth L., Elsa A. Sutton, Geoffrey B. Johnson, and Ryan M. Phillips. 2024. "Application of Advanced Imaging to Prostate Cancer Diagnosis and Management: A Narrative Review of Current Practice and Unanswered Questions" Journal of Clinical Medicine 13, no. 2: 446. https://doi.org/10.3390/jcm13020446
APA StyleMcKone, E. L., Sutton, E. A., Johnson, G. B., & Phillips, R. M. (2024). Application of Advanced Imaging to Prostate Cancer Diagnosis and Management: A Narrative Review of Current Practice and Unanswered Questions. Journal of Clinical Medicine, 13(2), 446. https://doi.org/10.3390/jcm13020446