Toward the Discovery and Development of PSMA Targeted Inhibitors for Nuclear Medicine Applications
Sara Pastorino1, Mattia Riondato1, Licia Uccelli2,3
1Nuclear Medicine Department, S. Andrea Hospital, Via Vittorio Veneto 197, 19124 La Spezia, Italy.
Background:
The rising incidence rate of prostate cancer (PCa) has promoted the development of new diagnostic and therapeutic radiopharmaceuticals during the last decades. Promising improvements have been achieved in clinical practice using prostate specific membrane antigen (PSMA) labeled agents, including specific antibodies and small molecular weight inhibitors. Focusing on molecular docking studies, this review aims to highlight the progress in the design of PSMA targeted agents for a potential use in nuclear medicine.
Results:
Although the first development of radiopharmaceuticals able to specifically recognize PSMA was exclusively oriented to macromolecule protein structure such as radiolabeled monoclonal antibodies and derivatives, the isolation of the crystal structure of PSMA served as the trigger for the synthesis and the further evaluation of a variety of low molecular weight inhibitors. Among the nuclear imaging probes and radiotherapeutics that have been developed and tested till today, labeled Glutamate-ureido inhibitors are the most prevalent PSMA-targeting agents for nuclear medicine applications.
Conclusion:
PSMA represents for researchers the most attractive target for the detection and treatment of patients affected by PCa using nuclear medicine modalities. [99mTc]MIP-1404 is considered the tracer of choice for SPECT imaging and [68Ga]PSMA-11 is the leading diagnostic for PET imaging by general consensus. [18F]DCFPyL and [18F]PSMA-1007 are clearly the emerging PET PSMA candidates for their great potential for a widespread commercial distribution. After paving the way with new imaging tools, academic and industrial R&Ds are now focusing on the development of PSMA inhibitors labeled with alpha or beta minus emitters for a theragnostic application.
Insights
Researchers are advancing prostate cancer (PCa) diagnostics and therapeutics using prostate specific membrane antigen (PSMA) targeted agents. Molecular docking studies highlight progress in designing PSMA inhibitors for nuclear medicine applications.
Area of Science:
- Nuclear Medicine
- Oncology
- Radiopharmaceutical Chemistry
Background:
- Rising prostate cancer (PCa) incidence drives development of novel diagnostic and therapeutic radiopharmaceuticals.
- Prostate specific membrane antigen (PSMA)-targeted agents, including antibodies and small molecule inhibitors, show promise in clinical practice.
- Molecular docking studies are crucial for understanding PSMA-ligand interactions and designing new agents.
Purpose of the Study:
- To review the progress in designing PSMA-targeted agents for nuclear medicine.
- To highlight the role of molecular docking in the development of these agents.
- To discuss current and emerging PSMA-targeting radiopharmaceuticals for PCa.
Main Methods:
- Literature review focusing on molecular docking studies of PSMA inhibitors.
- Analysis of PSMA-targeting radiopharmaceuticals, including antibodies and small molecules.
- Evaluation of imaging probes and radiotherapeutics for nuclear medicine applications.
Main Results:
- Early PSMA radiopharmaceuticals focused on antibodies; PSMA crystal structure enabled development of low molecular weight inhibitors.
- Labeled Glutamate-ureido inhibitors are currently the most common PSMA-targeting agents in nuclear medicine.
- Several PSMA-targeting agents show significant potential for SPECT and PET imaging, with others emerging for theranostic applications.
Conclusions:
- PSMA is a key target for PCa detection and treatment in nuclear medicine.
- [99mTc]MIP-1404 (SPECT) and [68Ga]PSMA-11 (PET) are established imaging agents.
- [18F]DCFPyL and [18F]PSMA-1007 are promising PET agents for commercial use, while alpha/beta-emitting PSMA inhibitors are under development for theranostics.
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