Design, Synthesis and Preclinical Assessment of 99m Tc-iFAP for In Vivo Fibroblast Activation Protein (FAP) Imaging.
Diana Trujillo-BenítezMyrna Luna-GutiérrezGuillermina Ferro-FloresBlanca Ocampo-GarciaClara Santos-CuevasGerardo Bravo-VillegasEnrique Morales-ÁvilaPedro Cruz-NovaLorenza Díaz-NietoJanice García-QuirozErika Azorín-VegaAntonio RosatoLaura Melendez-AlafortPublished in: Molecules (Basel, Switzerland) (2022)
Fibroblast activation protein (FAP) is expressed in the microenvironment of most human epithelial tumors. 68 Ga-labeled FAP inhibitors based on the cyanopyrrolidine structure (FAPI) are currently used for the detection of the tumor microenvironment by PET imaging. This research aimed to design, synthesize and preclinically evaluate a new FAP inhibitor radiopharmaceutical based on the 99m Tc-((R)-1-((6-hydrazinylnicotinoyl)-D-alanyl) pyrrolidin-2-yl) boronic acid ( 99m Tc-iFAP) structure for SPECT imaging. Molecular docking for affinity calculations was performed using the AutoDock software. The chemical synthesis was based on a series of coupling reactions of 6-hidrazinylnicotinic acid (HYNIC) and D-alanine to a boronic acid derivative. The iFAP was prepared as a lyophilized formulation based on EDDA/SnCl 2 for labeling with 99m Tc. The radiochemical purity (R.P.) was verified via ITLC-SG and reversed-phase radio-HPLC. The stability in human serum was evaluated by size-exclusion HPLC. In vitro cell uptake was assessed using N30 stromal endometrial cells (FAP positive) and human fibroblasts (FAP negative). Biodistribution and tumor uptake were determined in Hep-G2 tumor-bearing nude mice, from which images were acquired using a micro-SPECT/CT. The iFAP ligand ( Ki = 0.536 nm, AutoDock affinity), characterized by UV-Vis, FT-IR, 1 H-NMR and UPLC-mass spectroscopies, was synthesized with a chemical purity of 92%. The 99m Tc-iFAP was obtained with a R.P. >98%. In vitro and in vivo studies indicated high radiotracer stability in human serum (>95% at 24 h), specific recognition for FAP, high tumor uptake (7.05 ± 1.13% ID/g at 30 min) and fast kidney elimination. The results found in this research justify additional dosimetric and clinical studies to establish the sensitivity and specificity of the 99m Tc-iFAP.
Keyphrases
- pet imaging
- molecular docking
- high resolution
- endothelial cells
- ms ms
- pet ct
- simultaneous determination
- stem cells
- magnetic resonance
- computed tomography
- cell therapy
- mass spectrometry
- induced apoptosis
- bone marrow
- protein protein
- single cell
- induced pluripotent stem cells
- radiation therapy
- drug delivery
- type diabetes
- magnetic resonance imaging
- squamous cell carcinoma
- binding protein
- high performance liquid chromatography
- solid phase extraction
- cell death
- skeletal muscle
- convolutional neural network
- cell cycle arrest
- small molecule
- machine learning
- monte carlo
- quantum dots
- neoadjuvant chemotherapy
- case control
- rectal cancer