Highly efficient in vivo agonist-induced internalization of sst2 receptors in somatostatin target tissues

Bea Waser1, Maria-Luisa Tamma, Renzo Cescato

  • 1Division of Cell Biology and Experimental Cancer Research, Institute of Pathology, University of Berne, Berne, Switzerland.

Abstract

Insights

In vivo evidence shows that somatostatin receptor subtype 2 (sst(2)) receptors internalize rapidly and efficiently into tumor cells after agonist stimulation. This internalization process is crucial for the sustained uptake of radioligands in sst(2)-expressing tumors.

Area of Science:

  • Oncology
  • Radiopharmacology
  • Molecular Imaging

Background:

  • Peptide receptor imaging relies on tumor-specific overexpression of receptors and high-affinity radioligand binding.
  • While in vitro studies confirm ligand-receptor complex internalization, in vivo evidence for agonist-induced internalization of somatostatin receptors (sst(2)) has been lacking.

Purpose of the Study:

  • To provide in vivo evidence for agonist-induced internalization of somatostatin receptor subtype 2 (sst(2)).
  • To investigate the kinetics and efficiency of sst(2) internalization in vivo.

Main Methods:

  • Rats bearing sst(2)-expressing AR42J tumors were injected with sst(2) agonists or antagonists.
  • Tumor and pancreatic tissues were collected at various time points post-injection (2.5 min to 24 h).
  • sst(2) immunohistochemistry was performed to visualize receptor localization.

Main Results:

  • sst(2) receptors shifted from the plasma membrane to intracellular locations within 2.5 minutes after agonist injection.
  • Internalization was rapid, efficient, and agonist-dependent, observed in both tumor and pancreatic cells.
  • Receptors returned to the cell surface 24 hours post-injection, suggesting reversibility.

Conclusions:

  • Agonist-induced sst(2) internalization occurs rapidly and efficiently in vivo in both neoplastic and physiological tissues.
  • This in vivo internalization mechanism likely explains the high and sustained uptake of sst(2) radioligands in tumors.
  • The findings support the functional role of sst(2) internalization in peptide receptor-based tumor imaging.

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