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Updated: Jul 26, 2025

Identifying PD-1/PD-L1 Inhibitors with Surface Plasmon Resonance Technology
Published on: May 2, 2025
Preparation and Application of a Bioorganic Nanoparticle-Enhanced PDL1-Targeted Small-Molecule Probe
Lei Xia1, Chengxue He1,2, Yanhui Guo3
1Key Laboratory of Carcinogenesis and Translational Research (Ministry of Education/Beijing), NMPA Key Laboratory for Research and Evaluation of Radiopharmaceuticals (National Medical Products Administration), Department of Nuclear Medicine, Peking University Cancer Hospital & Institute, Beijing 100142, China.
Abstract:
Programmed death ligand 1 (PDL1) is a specific molecular target for the diagnosis and immunotherapy of solid tumors. PET imaging can be used for noninvasive assessments of PDL1 expression in tumors to aid in therapy selection. The most frequently reported small-molecule radiotracer of PDL1 is limited by low imaging specificity, short residence time, and singular functionality. Here, we combined a biocompatible melanin nanoprobe with the PDL1-binding peptide WL12 to construct a novel radiotracer, 124I-WPMN, to enhance PDL1 targeting. The radiochemical purity of 124I-WPMN was >95%, and uptake in A549PDL1 cells was 1.49 ± 0.08% at 2 h. The uptake was blocked by WL12 (0.39 ± 0.03%, P < 0.0001). This novel radiotracer showed a higher affinity for PDL1 (Kd = 18.5 nM) than 68Ga-NOTA-WL12 (Kd = 24.0 nM). Micro-PET/CT imaging demonstrated specific uptake and a high signal-to-noise ratio in an A549PDL1 xenograft mouse model with a tumor-to-muscle ratio of 27.31 ± 7.03 at 2 h. The levels increased or remained steady for more than 72 h, and tumor uptake was significantly higher than 68Ga-NOTA-WL12, at 6.08 ± 0.62 at 2 h. Prolonged retention of 124I-WPMN makes it possible to conduct PET/MRI imaging over long periods and to perform various imaging techniques. A clear advantage of 124I-WPMN over 68Ga-NOTA-WL12 was observed for PDL1-targeted PET imaging after nanoparticle modification, supporting the utility of 124I-WPMN PET imaging as an effective diagnostic tool for optimizing PDL1-targeted therapies.
Insights
Researchers developed a new radiotracer, 124I-WPMN, for enhanced PET imaging of Programmed Death Ligand 1 (PDL1) in tumors. This novel nanoprobe offers improved targeting and diagnostic potential for immunotherapy selection.
Area of Science:
- Nuclear Medicine
- Oncology
- Nanotechnology
Background:
- Programmed death ligand 1 (PDL1) is a key target for cancer immunotherapy and diagnosis.
- Positron Emission Tomography (PET) enables noninvasive assessment of PDL1 expression for therapy selection.
- Existing PDL1 small-molecule radiotracers have limitations in specificity and retention.
Purpose of the Study:
- To develop and evaluate a novel radiotracer, 124I-WPMN, for enhanced PDL1-targeted PET imaging.
- To improve upon the diagnostic capabilities of current PDL1 imaging agents.
Main Methods:
- Conjugation of a biocompatible melanin nanoprobe with the PDL1-binding peptide WL12 to create 124I-WPMN.
- Assessment of radiochemical purity and cellular uptake in A549PDL1 cells.
- Evaluation of binding affinity (Kd) and comparison with 68Ga-NOTA-WL12.
- In vivo micro-PET/CT imaging in a xenograft mouse model.
Main Results:
- 124I-WPMN demonstrated high radiochemical purity (>95%) and specific uptake in A549PDL1 cells.
- The novel tracer exhibited higher affinity for PDL1 (Kd = 18.5 nM) compared to 68Ga-NOTA-WL12 (Kd = 24.0 nM).
- Micro-PET/CT imaging revealed specific tumor uptake and high signal-to-noise ratio, with prolonged retention (>72 h).
Conclusions:
- 124I-WPMN represents a promising advancement for PDL1-targeted PET imaging.
- Nanoparticle modification significantly enhances PDL1 targeting and imaging characteristics.
- This novel radiotracer holds potential as an effective diagnostic tool for optimizing PDL1-targeted cancer therapies.
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