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.

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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