Abstract
Prostate-specific membrane antigen (PSMA)–targeted theranostics have transformed the diagnostic and therapeutic landscape of prostate cancer; however, clinically relevant limitations persist, including heterogeneous or absent PSMA expression in a substantial subset of tumors and dose-limiting off-target uptake in salivary glands, lacrimal glands and kidneys. Prostatic acid phosphatase (ACP3), expressed in more than 95% of prostate cancers, has re-emerged as a promising complementary and potentially alternative theranostic target. ACP3 demonstrates favorable biological characteristics, including high and consistent tumor expression, persistence in castration-resistant disease, and minimal expression in critical but non-cancerous tissues. Recent advances in ligand discovery using DNA-encoded chemical libraries have enabled the development of high-affinity ACP3-targeting compounds, with successful first-in-human molecular imaging with [68Ga]Ga-OncoACP3-DOTA PET. Early clinical data demonstrate competitive diagnostic performance compared with PSMA-PET, markedly reduced salivary/lacrimal gland and renal uptake, and advantageous pharmacokinetics characterized by increasing tumor uptake and improving tumor-to-background ratios over time. Preclinical and translational evidence further supports the feasibility of ACP3-targeted radioligand therapy. This review summarizes the biological features of ACP3, its historical and current role as a biomarker, and emerging therapeutic applications, with a primary focus on ACP3-targeted molecular imaging and radioligand therapy. The available evidence positions ACP3 as a compelling next-generation theranostic target with the potential to overcome key limitations of PSMA-based approaches and expand precision treatment options for patients with prostate cancer.
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Seifert, K. E., Reimann, J., Rust, M., Bögemann, M., Schrader, A. J., Schäfers, M., … Backhaus, P. (2026). The prostatic acid phosphatase in prostate cancer: A novel theranostic target. Seminars in Nuclear Medicine, 56(4), 748–758. https://doi.org/10.1053/j.semnuclmed.2026.03.004
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