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.

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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