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Updated: May 10, 2026

Harnessing the Bioorthogonal Inverse Electron Demand Diels-Alder Cycloaddition for Pretargeted PET Imaging
Published on: February 3, 2015
Highly reactive trans-cyclooctene tags with improved stability for Diels-Alder chemistry in living systems
Raffaella Rossin1, Sandra M van den Bosch, Wolter Ten Hoeve
1Philips Research, Eindhoven, The Netherlands.
Abstract:
One of the challenges of pretargeted radioimmunotherapy, which centers on the capture of a radiolabeled probe by a preinjected tumor-bound antibody, is the potential immunogenicity of biological capturing systems. A bioorthogonal chemical approach may circumvent this drawback, but effective in vivo chemistry in mice, larger animals, and eventually humans, requires very high reagent reactivity, sufficient stability, and retained selectivity. We report here that the reactivity of the fastest bioorthogonal reaction, the inverse-electron-demand-Diels-Alder cycloaddition between a tetrazine probe and a trans-cyclooctene-tagged antibody, can be increased 10-fold (k2 = 2.7 × 10(5) M(-1) s(-1)) via the trans-cyclooctene, approaching the speed of biological interactions, while also increasing its stability. This was enabled by the finding that the trans-cyclooctene tag is probably deactivated through isomerization to the unreactive cis-cyclooctene isomer by interactions with copper-containing proteins, and that increasing the steric hindrance on the tag can impede this process. Next, we found that the higher reactivity of axial vs equatorial linked TCO can be augmented by the choice of linker. The new, stabilized, and more reactive tag allowed for improved tumor-to-nontumor ratios in pretargeted tumor-bearing mice.
Insights
Researchers enhanced bioorthogonal chemistry for pretargeted radioimmunotherapy. By stabilizing and increasing the reactivity of the trans-cyclooctene tag, they improved tumor targeting and reduced off-target effects in mice.
Area of Science:
- Bioconjugation Chemistry
- Chemical Biology
- Oncology Therapeutics
Background:
- Pretargeted radioimmunotherapy (PRIT) faces challenges with immunogenicity of biological systems.
- Effective in vivo bioorthogonal chemistry requires high reactivity, stability, and selectivity for clinical translation.
Purpose of the Study:
- To enhance the reactivity and stability of bioorthogonal reactions for PRIT.
- To overcome limitations of current bioorthogonal chemistry for in vivo applications.
Main Methods:
- Investigated the inverse-electron-demand-Diels-Alder reaction between tetrazine and trans-cyclooctene (TCO).
- Modified the TCO tag to increase steric hindrance, preventing deactivation by copper proteins.
- Optimized linker strategies to enhance TCO reactivity.
Main Results:
- Achieved a 10-fold increase in reaction rate (k2 = 2.7 × 10(5) M(-1) s(-1)) for the TCO-tetrazine reaction.
- Developed a stabilized TCO tag resistant to cis-isomerization.
- Demonstrated improved tumor-to-nontumor ratios in preclinical mouse models.
Conclusions:
- Enhanced bioorthogonal chemistry offers a promising alternative to biological systems in PRIT.
- Stabilized and highly reactive TCO tags enable efficient in vivo pretargeting.
- This approach holds potential for safer and more effective cancer therapies.
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