18F-Labeled Single-Stranded DNA Aptamer for PET Imaging of Protein Tyrosine Kinase-7 Expression

Orit Jacobson1, Ido D Weiss2, Lu Wang3

  • 1Laboratory of Molecular Imaging and Nanomedicine, National Institute of Biomedical Imaging and Bioengineering.

Abstract

Insights

This study developed a novel PET imaging agent, (18)F-Tr-Sgc8, for visualizing Protein tyrosine kinase-7 (PTK7) expression in tumors. The new radioligand shows high affinity and successfully images PTK7 in preclinical cancer models.

Area of Science:

  • Oncology
  • Radiochemistry
  • Molecular Imaging

Background:

  • Protein tyrosine kinase-7 (PTK7) is highly expressed in various human malignancies and correlates with aggressive tumor behavior.
  • There is a critical unmet need for noninvasive methods to visualize tumoral PTK7 expression using PET or SPECT.
  • Current imaging techniques lack the specificity and sensitivity required for PTK7 visualization.

Purpose of the Study:

  • To develop a specific, selective, and high-affinity PET radioligand for noninvasive imaging of PTK7.
  • To create a single-stranded DNA aptamer-based tracer for accurate PTK7 detection in vivo.
  • To address the challenge of visualizing tumoral PTK7 expression for improved cancer diagnosis and treatment monitoring.

Main Methods:

  • A 41-oligonucleotide aptamer, Sgc8, targeting PTK7, was labeled with Fluorine-18 ((18)F).
  • A 2-step radiochemical synthesis involved radiofluorination of a hypervalent iodine(III) precursor and copper-mediated click conjugation.
  • The resulting radioligand, (18)F-Tr-Sgc8, was evaluated in vitro and in vivo using cell lines (HCT116, U87MG) and xenografted mice.

Main Results:

  • Efficient (18)F labeling of Sgc8 was achieved with a 62% ± 2% radiochemical yield.
  • (18)F-Tr-Sgc8 demonstrated high-affinity binding to PTK7-expressing cells (HCT116: 2.7 ± 0.6 nM; U87MG: 16.9 ± 2.1 nM).
  • In vivo PET imaging successfully visualized PTK7 expression in HCT116 tumors, with significant uptake in both subcutaneous and liver metastasis models, while U87MG tumors showed lower accumulation.

Conclusions:

  • The developed (18)F-radiolabeling methodology is robust for aptamer labeling and applicable to various targets.
  • (18)F-Tr-Sgc8 enables effective in vivo quantification of PTK7 expression.
  • This PET tracer holds potential for clinical translation in selecting and monitoring cancer therapies targeting PTK7.