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Monovalent and Divalent Designs of Copper Radiotheranostics Targeting Fibroblast Activation Protein in Cancer
Pawan Thapa1, Sashi Debnath1, Anjan Bedi1
1Department of Radiology, University of Texas Southwestern Medical Center, Dallas, TX 75390, USA.
Abstract:
Background: Fibroblast activation protein (FAP)-targeted theranostic radiopharmaceuticals have shown desired tumor-to-background organ selectivity due to the ubiquitous presence of FAP within the tumor microenvironment. However, suboptimal tumor retention and fast clearance have hindered their use to deliver effective cancer therapies. With well-documented FAP-targeting moieties and linkers appending them to optimal chelators, the development of copper radiopharmaceuticals has attracted considerable interest, given the fact that an ideal theranostic pair of copper radionuclides (64Cu: t1/2 = 12.7 h; 17.4% β+; Eβ+max = 653 keV and 67Cu: t1/2 = 2.58 d; 100% β-; Eβ-max = 562 keV) are available. Herein, we report our design, synthesis, and comparative evaluation of monovalent and divalent FAP-targeted theranostic conjugates constructed from our previously reported bifunctional chelator scaffold (BFS) based on 1,4,8,11-tetraaza-bicyclo [6.6.2]hexadecane-4,11-diacetic acid (CB-TE2A), which forms the most stable complex with Cu(II). Methods: After synthesis and characterization, the monovalent and divalent conjugates were radiolabeled with 64Cu for in vitro cell assays, followed by in vivo positron emission tomography (PET) imaging evaluation in relevant mouse models. Results: Both 64Cu-labeled conjugates showed high in vitro stability and anticipated FAP-mediated cell binding and internalization. The divalent one showed significantly higher FAP-specific tumor uptake than its monovalent counterpart. Conclusions: Our results demonstrate that the BFS-based multivalent approach can be practically used to generate FAP-targeted radiotheranostic agents for effective cancer diagnosis and treatment.
Insights
Multivalent fibroblast activation protein (FAP)-targeted radiopharmaceuticals show improved tumor uptake. This approach enhances FAP-targeted theranostic agents for better cancer diagnosis and treatment.
Area of Science:
- Nuclear medicine
- Radiopharmaceutical chemistry
- Oncology
Background:
- Fibroblast activation protein (FAP) is a target for cancer theranostics due to its presence in the tumor microenvironment.
- Existing FAP-targeted agents suffer from poor tumor retention and rapid clearance, limiting therapeutic efficacy.
- Copper radionuclides (64Cu and 67Cu) offer an ideal theranostic pair for developing advanced radiopharmaceuticals.
Purpose of the Study:
- To design, synthesize, and evaluate monovalent and divalent FAP-targeted theranostic conjugates.
- To compare the efficacy of monovalent versus divalent conjugates for FAP-targeting.
- To assess the potential of a bifunctional chelator scaffold (BFS) for developing improved radiotheranostic agents.
Main Methods:
- Synthesis and characterization of monovalent and divalent conjugates using a bifunctional chelator scaffold (BFS) based on CB-TE2A.
- Radiolabeling of conjugates with Copper-64 (64Cu) for in vitro and in vivo studies.
- In vitro cell assays for stability and FAP-mediated binding/internalization.
- In vivo positron emission tomography (PET) imaging in mouse models.
Main Results:
- Both 64Cu-labeled conjugates exhibited high in vitro stability and specific binding to FAP-expressing cells.
- The divalent conjugate demonstrated significantly higher FAP-specific tumor uptake compared to the monovalent version.
- PET imaging confirmed enhanced tumor targeting and retention with the divalent construct.
Conclusions:
- The BFS-based multivalent approach effectively enhances FAP-targeted radiopharmaceutical tumor uptake.
- Divalent FAP-targeted conjugates show superior performance over monovalent counterparts.
- This strategy offers a promising platform for developing advanced radiotheranostic agents for cancer diagnosis and therapy.
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