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Covalent Radiopharmaceuticals: Precision Imaging and Therapy for Cancer
Paul C Klauser1, Lei Wang2,3
1Molecular Pharmacology Program, Memorial Sloan Kettering Cancer Center, New York, New York 10065, United States.
Abstract:
Covalent radiopharmaceuticals are emerging as a powerful new class of agents for cancer imaging and therapy, offering durable target engagement that overcomes the key limitations of conventional, reversible tracers. By forming covalent bonds with nucleophilic residues on or near disease-relevant proteins, covalent radiopharmaceuticals can achieve prolonged tumor retention, improved target selectivity, and enhanced imaging contrast, or therapeutic efficacy. This strategy is particularly well-suited to addressing biological challenges such as rapid internalization, low target abundance, and tumor heterogeneity, where noncovalent agents often underperform. Recent advances have demonstrated the versatility of covalent radiopharmaceuticals across a range of molecular formats, including small molecules, protein binders, and peptidomimetics. These agents have been engineered with diverse covalent targeting moieties that enable selective and stable binding under physiological conditions. In preclinical and early clinical studies, covalent tracers have shown superior tumor retention and, in some cases, improved performance over standard-of-care agents. Importantly, covalent design also allows for greater alignment between tracer pharmacokinetics and radionuclide decay, improving dosimetry and expanding therapeutic windows. While challenges remain in optimizing covalent handle reactivity and minimizing off-target effects, ongoing innovations in synthetic chemistry and protein engineering are rapidly advancing the field. As the mechanistic and translational advantages of covalency become increasingly clear, covalent radiopharmaceuticals are poised to redefine molecular imaging and therapy. They are not merely specialized tools but are foundational components of next-generation precision oncology.
Insights
Covalent radiopharmaceuticals form durable bonds with cancer targets, improving imaging and therapy by overcoming limitations of reversible tracers. This new class offers enhanced tumor retention and selectivity for next-generation precision oncology.
Area of Science:
- Oncology
- Radiopharmaceutical Chemistry
- Molecular Imaging
Background:
- Conventional radiopharmaceuticals face limitations due to reversible target binding.
- Challenges include rapid internalization, low target abundance, and tumor heterogeneity.
- Covalent radiopharmaceuticals offer a novel approach to overcome these limitations.
Purpose of the Study:
- To review the advancements and potential of covalent radiopharmaceuticals.
- To highlight their advantages in cancer imaging and therapy.
- To discuss their role in next-generation precision oncology.
Main Methods:
- Development of covalent radiopharmaceuticals with diverse molecular formats (small molecules, protein binders, peptidomimetics).
- Engineering of covalent targeting moieties for selective and stable binding.
- Evaluation in preclinical and early clinical studies.
Main Results:
- Covalent radiopharmaceuticals demonstrate durable target engagement and prolonged tumor retention.
- Achieved improved target selectivity, imaging contrast, and therapeutic efficacy.
- Showed superior performance over standard-of-care agents in some cases.
- Enabled better alignment of pharmacokinetics with radionuclide decay, improving dosimetry.
Conclusions:
- Covalent radiopharmaceuticals represent a significant advancement in cancer imaging and therapy.
- They offer enhanced performance by overcoming limitations of noncovalent agents.
- Ongoing innovations position them as foundational components of precision oncology.
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