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Updated: Feb 23, 2026

Development of a 68Gallium-Labeled D-Peptide PET Tracer for Imaging Programmed Death-Ligand 1 Expression
Published on: February 3, 2023
Peptide-based PET imaging of the tumor restricted IL13RA2 biomarker
Kiran Kumar Solingapuram Sai1, Anirudh Sattiraju1, Frankis G Almaguel1
1Department of Radiology, Wake Forest School of Medicine, Winston-Salem, NC, USA.
Abstract:
Peptides that target cancer cell surface receptors are promising platforms to deliver diagnostic and therapeutic payloads specifically to cancer but not normal tissue. IL13RA2 is a tumor-restricted receptor found to be present in several aggressive malignancies, including in the vast majority of high-grade gliomas and malignant melanoma. This receptor has been successfully targeted for diagnostic and therapeutic purposes using modified IL-13 ligand and more recently using a specific peptide, Pep-1L. In the current work, we establish the in vitro and in vivo tumor binding properties of radiolabeled Pep-1L, designed for tumor imaging. We radiolabeled Pep-1L with Copper-64 and demonstrated specific cell uptake in the IL13RA2-over expressing G48 glioblastoma cell line having abundant IL13RA2 expression. [64Cu]Pep-1L binding was blocked by unlabeled ligand, demonstrating specificity. To demonstrate in vivo tumor uptake, we intravenously injected into tumor-bearing mice and demonstrated that [64Cu]Pep-1L specifically bound tumors at 24 hours, which was significantly blocked (3-fold) by pre-injecting unlabeled peptide. To further demonstrate specificity of Pep-1L towards IL13RA2 in vivo, we exploited an IL13RA2-inducible melanoma tumor model that does not express receptor at baseline but expresses abundant receptor after treatment with doxycycline. We injected [64Cu]Pep-1L into mice bearing IL13RA2-inducible melanoma tumors and performed in vivo PET/CT and post-necropsy biodistribution studies and found that tumors that were induced to express IL13RA2 receptor by doxycycline pretreatment bound radiolabeled Pep-1L 3-4 fold greater than uninduced tumors, demonstrating receptor specificity. This work demonstrates that [64Cu]Pep-1L selectively binds hIL13RA2-expressing tumors and validates Pep-1L as an effective platform to deliver diagnostics and therapeutics to IL13RA2-expressing cancers.
Insights
Radiolabeled Pep-1L peptide shows specific binding to IL13RA2-expressing tumors in vitro and in vivo. This validates Pep-1L as a promising platform for targeted cancer diagnostics and therapeutics.
Area of Science:
- Oncology
- Radiochemistry
- Molecular Imaging
Background:
- Interleukin-13 receptor alpha 2 (IL13RA2) is a tumor-restricted receptor overexpressed in aggressive cancers like glioblastoma and melanoma.
- Targeting IL13RA2 offers a specific approach for delivering diagnostic and therapeutic agents to cancer cells.
- Pep-1L is a peptide developed to target the IL13RA2 receptor.
Purpose of the Study:
- To evaluate the in vitro and in vivo tumor binding properties of radiolabeled Pep-1L for cancer imaging.
- To confirm the specificity of Pep-1L binding to IL13RA2-expressing tumors.
Main Methods:
- Pep-1L was radiolabeled with Copper-64 ([64Cu]).
- In vitro studies involved assessing cell uptake in IL13RA2-overexpressing glioblastoma cells.
- In vivo studies utilized tumor-bearing mice, including an IL13RA2-inducible melanoma model, with PET/CT imaging and biodistribution analysis.
Main Results:
- [64Cu]Pep-1L demonstrated specific uptake in IL13RA2-positive glioblastoma cells, which was blocked by unlabeled peptide.
- In vivo studies showed specific tumor accumulation of [64Cu]Pep-1L in tumor-bearing mice, with significant blocking by unlabeled peptide.
- Tumors induced to express IL13RA2 showed a 3-4 fold greater uptake of [64Cu]Pep-1L compared to uninduced tumors, confirming receptor specificity.
Conclusions:
- [64Cu]Pep-1L selectively binds to tumors expressing the human IL13RA2 receptor.
- Pep-1L is validated as an effective platform for targeted delivery of diagnostics and therapeutics to IL13RA2-expressing cancers.

