Development of FAPI Tetramers to Improve Tumor Uptake and Efficacy of FAPI Radioligand Therapy.
Where this comes from
- Record sourced from PubMed, PMID 37321827.
- Also identified by DOI 10.2967/jnumed.123.265599 and PMC identifier 10478824.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Radiolabeled fibroblast activation protein (FAP) inhibitors (FAPIs) have shown promise as cancer diagnostic agents; however, the relatively short tumor retention of FAPIs may limit their application in radioligand therapy. In this paper, we report the design, synthesis, and evaluation of a FAPI tetramer. The aim of the study was to evaluate the tumor-targeting characteristics of radiolabeled FAPI multimers in vitro and in vivo, thereby providing information for the design of FAP-targeted radiopharmaceuticals based on the polyvalency principle. <b>Methods:</b> FAPI tetramers were synthesized on the basis of FAPI-46 and radiolabeled with <sup>68</sup>Ga, <sup>64</sup>Cu, and <sup>177</sup>Lu. In vitro FAP-binding characteristics were identified using a competitive cell-binding experiment. To evaluate their pharmacokinetics, small-animal PET, SPECT, and ex vivo biodistribution analyses were performed on HT-1080-FAP and U87MG tumor-bearing mice. In addition, the 2 tumor xenografts received radioligand therapy with <sup>177</sup>Lu-DOTA-4P(FAPI)<sub>4</sub>, and the antitumor efficacy of the <sup>177</sup>Lu-FAPI tetramer was evaluated and compared with that of the <sup>177</sup>Lu-FAPI dimer and monomer. <b>Results:</b> <sup>68</sup>Ga-DOTA-4P(FAPI)<sub>4</sub> and <sup>177</sup>Lu-DOTA-4P(FAPI)<sub>4</sub> were highly stable in phosphate-buffered saline and fetal bovine serum. The FAPI tetramer exhibited high FAP-binding affinity and specificity both in vitro and in vivo. <sup>68</sup>Ga-, <sup>64</sup>Cu-, and <sup>177</sup>Lu-labeled FAPI tetramers exhibited higher tumor uptake, longer tumor retention, and slower clearance than FAPI dimers and FAPI-46 in HT-1080-FAP tumors. The uptake (percentage injected dose per gram) of <sup>177</sup>Lu-DOTA-4P(FAPI)<sub>4</sub>, <sup>177</sup>Lu-DOTA-2P(FAPI)<sub>2</sub>, and <sup>177</sup>Lu-FAPI-46 in HT-1080-FAP tumors at 24 h was 21.4 ± 1.7, 17.1 ± 3.9, and 3.4 ± 0.7, respectively. Moreover, <sup>68</sup>Ga-DOTA-4P(FAPI)<sub>4</sub> uptake in U87MG tumors was approximately 2-fold the uptake of <sup>68</sup>Ga-DOTA-2P(FAPI)<sub>2</sub> (SUV<sub>mean</sub>, 0.72 ± 0.02 vs. 0.42 ± 0.03, <i>P</i> < 0.001) and more than 4-fold the uptake of <sup>68</sup>Ga-FAPI-46 (0.16 ± 0.01, <i>P</i> < 0.001). In the radioligand therapy study, remarkable tumor suppression was observed with the <sup>177</sup>Lu-FAPI tetramer in both HT-1080-FAP and U87MG tumor-bearing mice. <b>Conclusion:</b> The satisfactory FAP-binding affinity and specificity, as well as the favorable in vivo pharmacokinetics of the FAPI tetramer, make it a promising radiopharmaceutical for theranostic applications. Improved tumor uptake and prolonged retention of the <sup>177</sup>Lu-FAPI tetramer resulted in excellent characteristics for FAPI imaging and radioligand therapy.
Medical subject headings
- Gallium Radioisotopes
- Neoplasms