Temporal and spatial evolution of therapy-induced tumor apoptosis detected by caspase-3-selective molecular imaging

Quang-Dé Nguyen1, Ioannis Lavdas, James Gubbins

  • 1Department of Surgery and Cancer, Imperial College London Faculty of Medicine, Comprehensive Cancer Imaging Centre, Hammersmith Hospital, London, United Kingdom.

Abstract

Insights

Positron emission tomography (PET) with the caspase-3 radiotracer [(18)F]ICMT-11 noninvasively detected apoptosis in tumors following treatment with cyclophosphamide (CPA) or birinapant. This imaging approach shows promise as a pharmacodynamic biomarker for tracking treatment response.

Area of Science:

  • Oncology
  • Radiochemistry
  • Molecular Imaging

Background:

  • Inducing apoptosis in tumors is a key goal of cancer therapy.
  • Noninvasive monitoring of apoptosis dynamics is crucial for evaluating treatment efficacy.

Purpose of the Study:

  • To investigate the noninvasive detection of spatiotemporal apoptosis evolution using [(18)F]ICMT-11 PET.
  • To assess the utility of [(18)F]ICMT-11 PET as a pharmacodynamic biomarker for anticancer therapies.

Main Methods:

  • [(18)F]ICMT-11 PET imaging was performed in mice bearing B-cell lymphoma, colon carcinoma, or breast adenocarcinoma tumors.
  • Mice were treated with cyclophosphamide (CPA) or the SMAC mimetic birinapant.
  • Ex vivo caspase-3 analysis was correlated with in vivo PET data.

Main Results:

  • Drug treatment led to a time-dependent increase in [(18)F]ICMT-11 tumor uptake.
  • [(18)F]ICMT-11 PET detected discrete pockets of caspase-3 activation within tumors.
  • Increased radiotracer uptake correlated with ex vivo caspase-3 activation and predicted apoptosis.

Conclusions:

  • [(18)F]ICMT-11 PET can noninvasively visualize the proapoptotic effects of CPA and birinapant.
  • [(18)F]ICMT-11 PET serves as a promising pharmacodynamic biomarker for caspase-3-associated apoptosis in tumors.

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