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Updated: Aug 31, 2026

Pretargeted Radioimmunotherapy Based on the Inverse Electron Demand Diels-Alder Reaction
Published on: January 29, 2019
Development of new multivalent-bispecific agents for pretargeting tumor localization and therapy
Edmund A Rossi1, Robert M Sharkey, William McBride
1IBC Pharmaceuticals, Inc., Morris Plains, New Jersey 07950, USA.
Purpose:
Two bispecific diabodies (BS1.5 and BS1.5H) and two bispecific trivalent proteins (BS6 and BS8) were produced and tested as potential agents for pretargeted delivery of radiolabeled bivalent haptens to tumors expressing carcinoembryonic antigen.
Experimental Design:
Each of the four proteins was expressed in Escherichia coli and purified from the soluble fraction. BS1.5 and BS1.5H (a humanized version of BS1.5) were evaluated in the GW-39 human colonic tumor-nude mouse model using a di-HSG-1,4,7,10-tetra-azacyclododecane-N,N',N" N"'-tetraacetic acid peptide (IMP-241) radiolabeled with (111)In. The biodistribution and T/NT ratios were compared with those of hMN-14 x m679 (Fab' x Fab') prepared chemically.
Results:
In animals, both BS1.5 and BS1.5H cleared more rapidly than hMN-14 x m679 and showed tumor to nontumor ratios far superior to those of hMN-14 x m679. For example, with BS1.5 injected 8 h before (111)In-IMP-241, the tumor uptake of (111)In was 10.3 +/- 2.7 and 6.3 +/- 2.2% ID/g at 3 and 24 h, respectively, with the tumor to blood ratios being 167 +/- 35 at 3 h and 631 +/- 231 at 24 h. In comparison, the tumor to blood ratios of (111)In observed for hMN-14 x m679 given 24 h earlier were 8 +/- 2 at 3 h and 16 +/- 3 at 24 h.
Conclusions:
These results indicate that BS1.5 and BS1.5H are promising candidates for use in a variety of pretargeting applications, including tumor therapy with radionuclides and drugs. BS6 and BS8 may be even more attractive because of their potential to achieve higher levels of tumor uptake because of divalent carcinoembryonic antigen binding.
Insights
Bispecific diabodies (BS1.5 and BS1.5H) show superior tumor targeting for carcinoembryonic antigen-expressing tumors. These agents offer improved tumor-to-nontumor ratios for pretargeted delivery of radiolabeled haptens.
Area of Science:
- Biotechnology
- Oncology
- Radiopharmaceutical Chemistry
Background:
- Pretargeted radioimmunotherapy aims to improve tumor targeting and reduce off-target toxicity.
- Bispecific antibodies offer enhanced tumor cell binding and facilitate the delivery of payloads.
Purpose of the Study:
- To evaluate bispecific diabodies (BS1.5, BS1.5H) and trivalent proteins (BS6, BS8) for pretargeted delivery of radiolabeled haptens to carcinoembryonic antigen (CEA)-expressing tumors.
- To compare the efficacy of these novel agents with a conventional bispecific antibody (hMN-14 x m679).
Main Methods:
- Production and purification of four bispecific proteins (BS1.5, BS1.5H, BS6, BS8) using Escherichia coli expression.
- In vivo evaluation in a human colonic tumor-nude mouse model (GW-39) using (111)In-labeled IMP-241.
- Assessment of biodistribution and tumor-to-nontumor (T/NT) ratios.
Main Results:
- BS1.5 and BS1.5H demonstrated rapid clearance and significantly higher tumor-to-nontumor ratios compared to hMN-14 x m679.
- BS1.5 achieved tumor uptake of 10.3% ID/g at 3 hours and 6.3% ID/g at 24 hours, with tumor-to-blood ratios of 167 and 631, respectively.
- In contrast, hMN-14 x m679 showed much lower tumor-to-blood ratios (8 at 3h, 16 at 24h).
Conclusions:
- BS1.5 and BS1.5H are promising candidates for pretargeted delivery applications, including radionuclide and drug-based tumor therapy.
- BS6 and BS8 may offer even greater potential due to their bivalent binding to CEA, potentially leading to higher tumor uptake.
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