Radiolabeled isatin binding to caspase-3 activation induced by anti-Fas antibody

Delphine L Chen1, Dong Zhou, Wenhua Chu

  • 1Mallinckrodt Institute of Radiology, Washington University School of Medicine, St. Louis, MO 63110, USA. chend@mir.wustl.edu

Abstract

Insights

Radiolabeled isatins show promise for imaging caspase-3 activity in vivo, aiding apoptosis research. However, their sensitivity is limited, requiring further optimization for clinical use in diseases with apoptotic dysregulation.

Area of Science:

  • Biomedical Imaging
  • Molecular Imaging
  • Apoptosis Research

Background:

  • Noninvasive imaging is crucial for understanding diseases with apoptotic dysregulation.
  • Targeting apoptotic pathways is key in drug development.
  • Radiolabeled compounds can visualize biological processes noninvasively.

Purpose of the Study:

  • To evaluate radiolabeled isatins for quantifying caspase-3 activity.
  • To assess their utility in visualizing apoptosis induced by anti-Fas antibody in mice.
  • To explore potential diagnostic and therapeutic applications.

Main Methods:

  • MicroPET imaging and biodistribution studies of three radiolabeled isatins ([(18)F]WC-II-89, [(18)F]WC-IV-3, [(11)C]WC-98).
  • Comparison with [(99m)Tc]mebrofenin and assessment of caspase inhibition using Q-VD-OPh.
  • Confirmation of caspase-3 activity via fluorometric enzyme assay.

Main Results:

  • All three isatin tracers showed increased retention in organs with elevated caspase-3 activity post-treatment.
  • [(18)F]WC-II-89 demonstrated statistically significant retention compared to [(99m)Tc]mebrofenin, suggesting specific binding to caspase-3.
  • Caspase inhibition partially reduced tracer retention, indicating specific binding, but overall sensitivity was low.

Conclusions:

  • Radiolabeled isatins exhibit in vivo specificity for caspase-3.
  • Current sensitivity limits their clinical applicability for apoptosis imaging.
  • Further tracer optimization is necessary for effective clinical translation.