Examination of Charge Modifications of an Endolysosomal Trapping Inhibitor in an Antagonistic NTSR1-Targeted

Wei Fan1,2, Wenting Zhang1,2, Sadie Allen3,4

  • 1Department of Pharmaceutical Sciences, University of Nebraska Medical Center, Omaha, Nebraska 68198-6120, United States.

Insights

This study developed novel endolysosomal trapping agents (ETs) to improve tumor retention for targeted radiotherapeutics. Modified ETs enhanced neurotensin receptor subtype 1 (NTSR1) targeted agents, showing promise for cancer therapy.

Area of Science:

  • Radiopharmaceutical Chemistry
  • Cancer Therapeutics
  • Molecular Imaging and Therapy

Background:

  • Low-molecular weight targeted radiotherapeutics (TRTs) achieve high tumor-to-non-target ratios but suffer from poor tumor retention, limiting therapeutic efficacy.
  • Endolysosomal trapping agents (ETs), such as irreversible cysteine cathepsin inhibitors, can enhance TRT tumor residence time by forming adducts with proteases.
  • Neurotensin receptor subtype 1 (NTSR1) is overexpressed in various cancers, making it a potential target for TRT development.

Purpose of the Study:

  • To investigate the impact of charge modification of ETs on the biological performance of neurotensin receptor subtype 1 (NTSR1)-targeted agents.
  • To evaluate the in vitro and in vivo efficacy of ET-enhanced NTSR1 antagonists in colon cancer models.
  • To assess the potential of the endolysosomal trapping strategy for improving NTSR1-targeted radiotherapeutics.

Main Methods:

  • Synthesis of four 177Lu-labeled ET-enhanced NTSR1-targeted agents (177Lu-NA-ET1-4) with varying charge states of E-64-based ETs.
  • In vitro evaluation of NTSR1 binding, internalization, efflux, inhibition, and adduct formation using HT-29 colon cancer cells.
  • In vivo biodistribution studies in an HT-29 mouse model to assess tumor targeting and off-target uptake.

Main Results:

  • Charge modifications on the ETs negatively impacted inhibition kinetics and in vitro adduct formation, while arginine deletion showed a modest improvement in kinetics.
  • Incorporation of ETs into NTSR1-targeted agents was well-tolerated, with minimal effects on in vivo targeting but increased renal uptake.
  • The developed ETs were successfully incorporated into NTSR1-targeted constructs, maintaining their adduct formation capabilities.

Conclusions:

  • Endolysosomal trapping agents can be effectively integrated into antagonistic NTSR1-targeted constructs without compromising key functionalities.
  • Charge modification of ETs requires careful optimization to balance inhibition kinetics and adduct formation for improved therapeutic outcomes.
  • The endolysosomal trapping strategy holds significant promise for further development in NTSR1- and other receptor-targeted antagonistic radiotherapeutics.

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