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Automated Preparation of [68Ga]Ga-3BP-3940 on a Synthesis Module for PET Imaging of the Tumor Microenvironment
Published on: April 25, 2025
Toward the Development of GE11-Based Radioligands for Imaging of Epidermal Growth Factor Receptor-Positive Tumors
Benedikt Judmann1,2, Diana Braun1,2, Ralf Schirrmacher3
1Biomedical Chemistry, Clinic of Radiology and Nuclear Medicine, Medical Faculty Mannheim, Heidelberg University, Theodor-Kutzer-Ufer 1-3, 68167 Mannheim, Germany.
Abstract:
The epidermal growth factor receptor (EGFR) is closely associated with tumor development and progression and thus an important target structure for imaging and therapy of various tumors. As a result of its important role in malignancies of various origins and the fact that antibody-based compounds targeting the EGFR have significant drawbacks in terms of in vivo pharmacokinetics, several attempts have been made within the last five years to develop peptide-based EGFR-specific radioligands based on the GE11 scaffold. However, none of these approaches have shown convincing results so far, which has been proposed to be attributed to different potential challenges associated with the GE11 lead structure: first, an aggregation of radiolabeled peptides, which might prevent their interaction with their target receptor, or second, a relatively low affinity of monomeric GE11, necessitating its conversion into a multimeric or polymeric form to achieve adequate EGFR-targeting properties. In the present work, we investigated if these aforementioned points are indeed critical and if the EGFR-targeting ability of GE11 can be improved by choosing an appropriate hydrophilic molecular design or a peptide multimer system to obtain a promising radiopeptide for the visualization of EGFR-overexpressing malignancies by positron emission tomography (PET). For this purpose, we developed several monovalent 68Ga-labeled GE11-based agents, a peptide homodimer and a homotetramer to overcome the challenges associated with GE11. The developed ligands were successfully labeled with 68Ga3+ in high radiochemical yields of ≥97% and molar activities of 41-104 GBq/μmol. The resulting radiotracers presented log values between -2.17 ± 0.21 and -3.79 ± 0.04 as well as a good stability in human serum with serum half-lives of 112 to 217 min for the monovalent radiopeptides and 84 and 62 min for the GE11 homodimer and homotetramer, respectively. In the following in vitro studies, none of the 68Ga-labeled radiopeptides demonstrated a considerable EGF receptor-specific uptake in EGFR-positive A431 cells. Moreover, none of the agents was able to displace [125I]I-EGF from the EGFR in competitive displacement assays in the same cell line in concentrations of up to 1 mM, whereas the endogenous receptor ligand hEGF demonstrated a high affinity of 15.2 ± 3.3 nM. These results indicate that it is not the aggregation of the GE11 sequence that seems to be the factor limiting the usefulness of the peptide as basis for radiotracer design but the limited affinity of monovalent and small homomultivalent GE11-based radiotracers to the EGFR. This highlights that the development of small-molecule GE11-based radioligands is not promising.
Insights
Researchers investigated GE11 peptide-based radioligands for epidermal growth factor receptor (EGFR) imaging. They found that limited affinity, not aggregation, hinders GE11
Area of Science:
- Radiochemistry
- Molecular Imaging
- Oncology
Background:
- Epidermal growth factor receptor (EGFR) is crucial in tumor progression, making it a key target for cancer imaging and therapy.
- Antibody-based EGFR-targeting agents have limitations in vivo pharmacokinetics.
- Peptide-based radioligands, particularly using the GE11 scaffold, are explored as alternatives for EGFR-targeted imaging and therapy.
Purpose of the Study:
- To investigate challenges in GE11-based radioligand development, specifically peptide aggregation and low affinity.
- To improve EGFR-targeting properties by designing hydrophilic molecules or multimeric peptide systems.
- To develop promising Gallium-68 (68Ga)-labeled radiopeptides for positron emission tomography (PET) imaging of EGFR-overexpressing tumors.
Main Methods:
- Synthesis and radiolabeling of monovalent, homodimeric, and homotetrameric 68Ga-labeled GE11 analogs.
- Assessment of radiochemical yields, molar activities, lipophilicity (logP), and in vitro stability in human serum.
- Evaluation of EGFR-specific uptake and competitive binding assays using EGFR-positive A431 cells and radiolabeled tracers.
Main Results:
- All developed 68Ga-labeled GE11 analogs were synthesized with high radiochemical yields (≥97%) and suitable molar activities.
- Radiotracers exhibited varying lipophilicity and good stability in human serum, with half-lives ranging from 62 to 217 minutes.
- None of the 68Ga-labeled GE11 analogs showed significant EGFR-specific uptake or competitive binding, indicating limited affinity to EGFR.
Conclusions:
- The limited affinity of GE11-based tracers, rather than aggregation, is the primary factor hindering their utility for EGFR-targeting.
- Small-molecule GE11-based radioligands are unlikely to be effective for developing PET imaging agents.
- Further research should focus on alternative strategies or scaffolds to overcome the affinity limitations of GE11 for EGFR imaging.

