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Updated: May 19, 2026

The Bioconjugation and Radiosynthesis of 89Zr-DFO-labeled Antibodies
Published on: February 12, 2015
Radiolabeled antibodies for cancer imaging and therapy
Jacques Barbet1, Manuel Bardiès, Mickael Bourgeois
1Centre de Recherche en Cancérologie de Nantes-Angers, Inserm, Université de Nantes, Nantes, France. jacques.barbet@univ-nantes.fr
Abstract:
Radiolabeled antibodies were studied first for tumor detection by single-photon imaging, but FDG PET stopped these developments. In the meantime, radiolabeled antibodies were shown to be effective in the treatment of lymphoma. Radiolabeling techniques are well established and radiolabeled antibodies are a clinical and commercial reality that deserves further studies to advance their application in earlier phase of the diseases and to test combination and adjuvant therapies including radiolabeled antibodies in hematological diseases. In solid tumors, more resistant to radiations and less accessible to large molecules such as antibodies, clinical efficacy remains limited. However, radiolabeled antibodies used in minimal or small-size metastatic disease have shown promising clinical efficacy. In the adjuvant setting, ongoing clinical trials show impressive increase in survival in otherwise unmanageable tumors. New technologies are being developed over the years: recombinant antibodies and pretargeting approaches have shown potential in increasing the therapeutic index of radiolabeled antibodies. In several cases, clinical trials have confirmed preclinical studies. Finally, new radionuclides, such as lutetium-177, with better physical properties will further improve the safety of radioimmunotherapy. Alpha particle and Auger electron emitters offer the theoretical possibility to kill isolated tumor cells and microscopic clusters of tumor cells, opening the perspective of killing the last tumor cell, which is the ultimate challenge in cancer therapy. Preliminary preclinical and preliminary clinical results confirm the feasibility of this approach.
Insights
Radiolabeled antibodies show promise in treating lymphoma and minimal metastatic disease. Further research into new technologies and radionuclides could enhance cancer therapy by targeting individual tumor cells.
Area of Science:
- Oncology
- Nuclear Medicine
- Immunotherapy
Background:
- Radiolabeled antibodies were initially explored for tumor detection but were superseded by FDG PET imaging.
- Their efficacy in lymphoma treatment is established, and techniques are commercially available.
- Limited efficacy in solid tumors is due to radiation resistance and poor antibody accessibility.
Purpose of the Study:
- To review the current status and future potential of radiolabeled antibodies in cancer therapy.
- To explore advancements in radiolabeling techniques, antibody engineering, and radionuclide development.
- To discuss applications in hematological malignancies, solid tumors, and adjuvant settings.
Main Methods:
- Review of established radiolabeling techniques and clinical applications.
- Analysis of ongoing clinical trials and preclinical studies.
- Exploration of novel technologies like recombinant antibodies, pretargeting, and advanced radionuclides.
Main Results:
- Radiolabeled antibodies are effective in treating lymphoma and show promise in minimal or small metastatic disease.
- Adjuvant therapy trials demonstrate significant survival improvements for difficult-to-manage tumors.
- New technologies and radionuclides (e.g., lutetium-177, alpha emitters) enhance therapeutic index and safety.
Conclusions:
- Radiolabeled antibodies are a viable clinical tool, particularly for hematological diseases and specific solid tumor scenarios.
- Advancements in technology and radionuclide selection are expanding their therapeutic potential.
- Targeting individual tumor cells with alpha or Auger electron emitters represents a frontier in cancer treatment.
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