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Caspase-3 Activity in the Rat Amygdala Measured by Spectrofluorometry After Myocardial Infarction
Published on: January 12, 2016
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
Introduction:
Noninvasive imaging methods that can distinguish apoptosis from necrosis may be useful in furthering our understanding of diseases characterized by apoptotic dysregulation as well as aiding drug development targeting apoptotic pathways. We evaluated the ability of radiolabeled isatins to quantify caspase-3 activity induced by the activation of the extrinsic apoptotic pathway by the anti-Fas antibody in mice.
Methods:
The behavior of three different radiolabeled isatins ([(18)F]WC-II-89, [(18)F]WC-IV-3 and [(11)C]WC-98) was characterized in mice with and without anti-Fas antibody treatment by microPET imaging and biodistribution studies. The activity of [(18)F]WC-II-89 was also compared with [(99m)Tc]mebrofenin. The effect of pan-caspase inhibition with quinolyl-valyl-O-methylaspartyl-[2,6-difluorophenoxy]-methyl ketone (Q-VD-OPh) on [(18)F]WC-II-89 uptake was studied. Caspase-3 activity was confirmed by a fluorometric enzyme assay.
Results:
All three tracers behaved similarly in microPET and biodistribution studies. Increased retention of all tracers was observed in the livers of treated animals and several other organs, all of which demonstrated increased caspase-3 enzyme activity; however, impaired hepatobiliary excretion made attribution of these findings to caspase-3 activity difficult. The isatin [(18)F]WC-II-89 was retained at statistically significantly higher levels in the organs after anti-Fas antibody treatment while [(99m)Tc]mebrofenin activity cleared, suggesting specific binding to activated caspase-3, but the magnitude of increased binding was still relatively low. Caspase inhibition with Q-VD-OPh partially blocked [(18)F]WC-II-89 retention but completely blocked caspase-3 enzyme activity in the liver.
Conclusions:
The radiolabeled isatins appear to bind specifically to caspase-3 in vivo, but their sensitivity is limited. Further optimization is required for these tracers to be useful for clinical applications.
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.
Related Concept Videos
The Extrinsic Apoptotic Pathway
Caspases

