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Updated: Sep 27, 2025

Development of a 68Gallium-Labeled D-Peptide PET Tracer for Imaging Programmed Death-Ligand 1 Expression
Published on: February 3, 2023
Evaluation of a Radiolabeled Macrocyclic Peptide as Potential PET Imaging Probe for PD-L1
Nedra Jouini1,2,3, Jens Cardinale1,3, Thomas L Mindt1,2,3
1Ludwig Boltzmann Institute Applied Diagnostics, General Hospital of Vienna, Währinger Gürtel 18-20, 1090, Vienna, Austria.
Abstract:
The interaction between the immune checkpoint PD-1 and PD-L1 promotes T-cell deactivation and cancer proliferation. Therefore, immune checkpoint inhibition therapy, which relies on prior assessment of the target, has been widely used for many cancers. As a non-invasive molecular imaging tool, radiotracers bring novel information on the in vivo expression of biomarkers (e. g., PD-L1), enabling a personalized treatment of patients. Our work aimed at the development of a PD-L1-specific, peptide-based PET radiotracer. We synthesized and evaluated a radiolabeled macrocyclic peptide adapted from a patent by Bristol Myers Squibb. Synthesis of [68 Ga]Ga-NJMP1 yielded a product with a radiochemical purity>95 % that was evaluated in vitro. However, experiments on CHO-K1 hPD-L1 cells showed very low cell binding and internalization rates of [68 Ga]Ga-NJMP1 in comparison to a control radiopeptide (WL12). Non-radioactive cellular assays using time-resolved fluorescence energy transfer confirmed the low affinity of the reported parent peptide and the DOTA-derivatives towards PD-L1. The results of our studies indicate that the macrocyclic peptide scaffold reported in the patent literature is not suitable for radiotracer development due to insufficient affinity towards PD-L1 and that C-terminal modifications of the macrocyclic peptide interfere with important ligand/receptor interactions.
Insights
This study developed a novel PET radiotracer for PD-L1 imaging but found the macrocyclic peptide scaffold unsuitable due to low affinity, hindering personalized cancer therapy development.
Area of Science:
- Oncology
- Molecular Imaging
- Radiochemistry
Background:
- Immune checkpoint inhibitors targeting PD-1/PD-L1 interactions are crucial for cancer therapy.
- Personalized treatment requires accurate in vivo assessment of biomarkers like PD-L1.
- Radiotracers offer a non-invasive method for evaluating biomarker expression.
Purpose of the Study:
- To develop a peptide-based positron emission tomography (PET) radiotracer targeting PD-L1.
- To evaluate the suitability of a specific macrocyclic peptide scaffold for PD-L1 imaging.
Main Methods:
- Synthesis and radiolabeling of a macrocyclic peptide ([68Ga]Ga-NJMP1).
- In vitro evaluation of radiotracer binding and internalization in CHO-K1 hPD-L1 cells.
- Affinity assessment using non-radioactive assays (time-resolved fluorescence energy transfer).
Main Results:
- High radiochemical purity (>95%) was achieved for [68Ga]Ga-NJMP1.
- The radiotracer exhibited very low cell binding and internalization rates.
- Non-radioactive assays confirmed low affinity of the peptide and its derivatives to PD-L1.
Conclusions:
- The macrocyclic peptide scaffold is not suitable for developing PD-L1-specific radiotracers.
- Insufficient affinity and interference from modifications limit the peptide's utility.
- Further research is needed to identify effective radiotracers for PD-L1 imaging.

