Heterobivalent dual-target probe for targeting GRP and Y1 receptors on tumor cells

Ajay Shrivastava1, Shu-Huei Wang, Natarajan Raju

  • 1Department of Radiology, The Ohio State University, Columbus, OH 43210, USA.

Insights

Researchers developed a novel dual-targeting peptide ligand, t-BBN/BVD15-DO3A, for imaging and therapy of breast cancer by targeting both gastrin-releasing peptide receptor (GRPR) and Y1 receptors. This dual-targeting approach aims to improve tumor detection and radiolabeling efficiency compared to single-receptor probes.

Area of Science:

  • Oncology
  • Radiochemistry
  • Molecular Imaging

Background:

  • Cancer receptor heterogeneity limits current imaging and therapy agents.
  • Gastrin-releasing peptide receptor (GRPR) and Y1 receptors are upregulated in most breast cancers.
  • Dual-targeting probes offer potential for improved tumor visualization and treatment delivery.

Purpose of the Study:

  • To design and develop a heterobivalent peptide ligand for simultaneous targeting of GRPR and Y1 receptors.
  • To validate the dual binding capability of the novel ligand for potential use in cancer imaging and therapy.
  • To create a versatile probe for radioisotopes like 68Ga and 177Lu for enhanced tumor targeting.

Main Methods:

  • Synthesis of a heterobivalent ligand, t-BBN/BVD15-DO3A, by coupling GRPR-targeting (J-G-Abz4-t-BBN) and Y1-targeting ([ε-J-(α-DO3A-ε-DGa)-K]-BVD-15) peptides.
  • Competitive displacement binding assays were performed to determine the ligand's affinity for GRPR and Y1 receptors.
  • Radioligand binding assays were conducted using human breast cancer cell lines (T-47D and MCF7).

Main Results:

  • The synthesized heterobivalent ligand, t-BBN/BVD15-DO3A, demonstrated dual-targeting capabilities.
  • An IC50 value of 18 ± 0.7 nM for GRPR was observed in T-47D cells.
  • An IC50 value of 80 ± 11 nM for Y1 receptor was observed in MCF7 cells.

Conclusions:

  • A single probe containing a DO3A chelate can effectively target both GRPR and Y1 receptors on human tumor cells.
  • The developed dual-targeting ligand shows promise for improving the efficacy of cancer imaging and therapy.
  • This approach could lead to more precise delivery of radioisotopes to tumor cells, overcoming receptor heterogeneity challenges.