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Published on: October 4, 2024
Theranostics in nuclear medicine: the era of precision oncology
Noopur Gandhi1, Ali M Alaseem2, Rohitas Deshmukh3
1Department of Pharmaceutical Chemistry, L. M. College of Pharmacy, Ahmedabad, Gujarat, 380005, India.
Abstract:
Theranostics represents a transformative advancement in nuclear medicine by integrating molecular imaging and targeted radionuclide therapy within the paradigm of personalized oncology. This review elucidates the historical evolution and contemporary clinical applications of theranostics, emphasizing its pivotal role in precision cancer management. The theranostic approach involves the coupling of diagnostic and therapeutic radionuclides that target identical molecular biomarkers, enabling simultaneous visualization and treatment of malignancies such as neuroendocrine tumors (NETs), prostate cancer, and differentiated thyroid carcinoma. Key theranostic radiopharmaceutical pairs, including Gallium-68-labeled DOTA-Tyr3-octreotate (Ga-68-DOTATATE) with Lutetium-177-labeled DOTA-Tyr3-octreotate (Lu-177-DOTATATE), and Gallium-68-labeled Prostate-Specific Membrane Antigen (Ga-68-PSMA) with Lutetium-177-labeled Prostate-Specific Membrane Antigen (Lu-177-PSMA), exemplify the "see-and-treat" principle central to this modality. This article further explores critical molecular targets such as somatostatin receptor subtype 2, prostate-specific membrane antigen, human epidermal growth factor receptor 2, CD20, and C-X-C chemokine receptor type 4, along with design principles for radiopharmaceuticals that optimize target specificity while minimizing off-target toxicity. Advances in imaging platforms, including positron emission tomography/computed tomography (PET/CT), single-photon emission computed tomography/CT (SPECT/CT), and hybrid positron emission tomography/magnetic resonance imaging (PET/MRI), have been instrumental in accurate dosimetry, therapeutic response assessment, and adaptive treatment planning. Integration of artificial intelligence (AI) and radiomics holds promise for enhanced image segmentation, predictive modeling, and individualized dosimetric planning. The review also addresses regulatory, manufacturing, and economic considerations, including guidelines from the United States Food and Drug Administration (USFDA) and European Medicines Agency (EMA), Good Manufacturing Practice (GMP) standards, and reimbursement frameworks, which collectively influence global adoption of theranostics. In summary, theranostics is poised to become a cornerstone of next-generation oncology, catalyzing a paradigm shift toward biologically driven, real-time personalized cancer care that seamlessly links diagnosis and therapy.
Insights
Theranostics integrates nuclear medicine imaging and targeted therapy for personalized cancer care. This approach uses diagnostic and therapeutic radionuclides to visualize and treat cancers like neuroendocrine tumors and prostate cancer.
Area of Science:
- Nuclear Medicine
- Oncology
- Radiopharmaceutical Chemistry
Background:
- Theranostics revolutionizes nuclear medicine by combining molecular imaging and radionuclide therapy.
- It enables personalized oncology through targeted cancer management.
Purpose of the Study:
- To review the evolution and clinical applications of theranostics in precision cancer care.
- To highlight key theranostic radiopharmaceutical pairs and molecular targets.
- To discuss advancements in imaging, AI, and regulatory aspects.
Main Methods:
- Review of historical data and contemporary clinical applications.
- Analysis of radiopharmaceutical design principles and molecular targets.
- Exploration of imaging technologies (PET/CT, SPECT/CT, PET/MRI) and AI integration.
Main Results:
- Theranostics enables "see-and-treat" approaches for cancers like NETs and prostate cancer using pairs such as Ga-68/Lu-177 DOTATATE and Ga-68/Lu-177 PSMA.
- Key targets include somatostatin receptor subtype 2 and prostate-specific membrane antigen.
- Advanced imaging and AI enhance dosimetry and treatment planning.
Conclusions:
- Theranostics represents a paradigm shift in oncology, offering biologically driven, personalized cancer care.
- It seamlessly links diagnosis and therapy for improved patient outcomes.
- Regulatory, manufacturing, and economic factors influence its global adoption.
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