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99mTc-Labeled Diarylpyrazoles for Single-Emission Computer Tomography Imaging of Neurotensin Receptor-Positive
Roman Potemkin1, Simone Maschauer1,2, Harald Hübner3
1Department of Nuclear Medicine, Molecular Imaging and Radiochemistry, Translational Research Center, Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU), 91054 Erlangen, Germany.
Abstract:
Background/Objectives: Neurotensin receptors (NTSRs), members of the G protein-coupled receptor (GPCR) family, have been found to be overexpressed in several types of human cancers, including breast, colon, lung, liver, prostate, and pancreatic cancer. In particular, NTSR1 is overexpressed in at least 75% of pancreatic ductal adenocarcinomas. The aim of the present study was the development and evaluation of new 99mTc-labeled nonpeptide NTSR1-antagonists for SPECT imaging of NTSR-positive tumors. Methods: Multistep syntheses of NTSR1 antagonist derivatives were performed following our previously described procedure. Two different chelating strategies were applied for 99mTc radiolabeling to provide the [99mTc]Tc-HYNIC complex [99mTc]1 and the [99mTc]Tc-tricarbonyl complex [99mTc]2. Receptor binding assays were performed using hNTSR1-expressing CHO cells. Radiochemical yields (RCYs) were determined by radio-HPLC. For [99mTc]1 and [99mTc]2, log D7.4, plasma protein binding, stability in human plasma and serum, and cellular uptake in HT-29 cells were determined. Biodistribution studies and small animal SPECT studies were performed in HT-29 tumor-bearing nude mice. Results: The radiosynthesis of [99mTc]1 (log D7.4 = -0.27) and [99mTc]2 (log D7.4 = 1.00) was successfully performed with RCYs of 94-96% (decay-corrected). Both radioligands were stable in human serum and plasma, showed plasma protein binding of 72% ([99mTc]1) and 82% ([99mTc]2), and exhibited high and specific uptake in HT-29 cells. Biodistribution studies in HT-29 tumor-bearing mice showed a higher tumor accumulation of [99mTc]1 compared to [99mTc]2 (8.8 ± 3.4 %ID/g vs. 2.7 ± 0.2 %ID/g at 2 h p.i.). [99mTc]2 showed exceptionally high intestinal accumulation (49 ± 22 %ID/g at 1 h p.i.) and was therefore considered unfavorable. In the SPECT/CT imaging of HT-29 tumor xenografts, [99mTc]1 showed a higher NTSR1-specific tumor uptake than [99mTc]2 at all time points after tracer injection, with 12 ± 2.8 %ID/g for [99mTc]1 vs. 3.1 ± 1.1 %ID/g for [99mTc]2 at 4 h p.i. and adequate tumor-to-background ratios. Conclusions: In particular, the [99mTc]Tc-HYNIC ligand ([99mTc]1) showed promising preclinical results, being a potential candidate for SPECT imaging and, therefore, appropriate for translation into the clinic.
Insights
New technetium-99m (99mTc)-labeled neurotensin receptor 1 (NTSR1) antagonists show promise for SPECT imaging. The [99mTc]Tc-HYNIC ligand demonstrated superior tumor uptake and is a potential candidate for clinical translation in NTSR1-positive cancers.
Area of Science:
- Radiochemistry
- Molecular Imaging
- Oncology
Background:
- Neurotensin receptors (NTSRs), including NTSR1, are overexpressed in various human cancers, notably pancreatic ductal adenocarcinomas.
- NTSR1 overexpression in tumors presents a target for diagnostic imaging agents.
Purpose of the Study:
- To develop and evaluate novel 99mTc-labeled nonpeptide NTSR1 antagonists for SPECT imaging of NTSR-positive tumors.
- To compare two different chelating strategies for 99mTc radiolabeling.
Main Methods:
- Synthesis of NTSR1 antagonist derivatives and radiolabeling using [99mTc]Tc-HYNIC and [99mTc]Tc-tricarbonyl complexes.
- In vitro evaluation including receptor binding assays, radiochemical yield determination, log D7.4, plasma protein binding, stability, and cellular uptake.
- In vivo assessment using biodistribution studies and small animal SPECT/CT imaging in HT-29 tumor-bearing nude mice.
Main Results:
- Both [99mTc]Tc-HYNIC ([99mTc]1) and [99mTc]Tc-tricarbonyl ([99mTc]2) were successfully synthesized with high radiochemical yields (94-96%).
- [99mTc]1 exhibited higher tumor accumulation (8.8 ± 3.4 %ID/g at 2h) and superior SPECT/CT imaging results (12 ± 2.8 %ID/g at 4h) compared to [99mTc]2, which showed high intestinal uptake.
- Specific uptake in HT-29 cells and adequate tumor-to-background ratios were observed for [99mTc]1.
Conclusions:
- The [99mTc]Tc-HYNIC ligand ([99mTc]1) demonstrated promising preclinical results for NTSR1-targeted SPECT imaging.
- This radioligand is a potential candidate for clinical translation in imaging NTSR1-positive tumors.
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