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Pitfalls on sample preparation for ex vivo imaging of resected cancer tissue using enzyme-activatable fluorescent
Ai Mochida1, Fusa Ogata1, Yasuhiro Maruoka1
1Molecular Imaging Program, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, Maryland, United States of America.
Abstract:
In vivo and ex vivo fluorescence imaging-assisted surgery can aid in determining the margins of tumors during surgical resection. While a variety of fluorescent probes have been proposed for this task, small molecule enzyme-activatable fluorescent probes are ideal for this application. They are quickly activated at tumor sites and result in bright signal with little background, resulting in high sensitivity. Testing in resected specimens, however, can be difficult. Enzymes are usually stable after freezing and thawing but catalytic reactions are generally temperature-dependent. Therefore, tissue sample temperature should be carefully considered. In this study two enzyme activatable probes, γ-glutamylhydroxymethyl rhodamine green (gGlu-HMRG) that reacted with γ-glutamyltransferase and SPiDER-βGal that reacted with β-galactosidase, were employed to determine the effects of temperature on fluorescence signal kinetics in both fresh and frozen and then thawed ex vivo experimental ovarian cancer tissue samples. The results suggest γ-glutamyltransferase was less sensitive to temperature than β-galactosidase. Fresh samples showed higher fluorescence signals of gGlu-HMRG compared with thawed samples likely because the freeze-thaw cycle decreased the rate of internalization of the activated probe into the lysosome. In contrast, no significant difference of SPiDER-βGal fluorescence signal was observed between fresh and frozen tissues. In conclusion, although imaging of fresh samples at 37°C is the best condition for both probes, successful imaging with gGlu-HMRG could be achieved even at room temperature with thawed samples. We demonstrate that temperature regulation and tissue handling of resected tissue are two pitfalls that may influence ex vivo imaging signals with enzyme-activatable fluorescent probes.
Insights
Temperature significantly impacts enzyme-activatable fluorescent probes for ex vivo tumor margin imaging. While fresh samples at 37°C are optimal, gGlu-HMRG shows promise with thawed tissues even at room temperature.
Area of Science:
- Biomedical Engineering
- Surgical Oncology
- Fluorescence Imaging
Background:
- Enzyme-activatable fluorescent probes enhance tumor margin visualization during surgery.
- Small molecule probes offer rapid activation and high sensitivity for in vivo and ex vivo imaging.
- Challenges exist in ex vivo testing due to enzyme stability and temperature-dependent reactions.
Purpose of the Study:
- To investigate the effect of temperature on fluorescence signal kinetics of two enzyme-activatable probes.
- To compare probe performance in fresh versus frozen-thawed ex vivo ovarian cancer tissue.
- To identify critical factors influencing ex vivo imaging with these probes.
Main Methods:
- Utilized two probes: gGlu-HMRG (γ-glutamyltransferase) and SPiDER-βGal (β-galactosidase).
- Tested probes on fresh and frozen-then-thawed ex vivo human ovarian cancer tissue samples.
- Analyzed fluorescence signal kinetics at different temperatures.
Main Results:
- γ-glutamyltransferase activity was less sensitive to temperature variations than β-galactosidase.
- gGlu-HMRG showed higher fluorescence in fresh samples compared to thawed samples.
- SPiDER-βGal fluorescence signal remained consistent between fresh and thawed tissues.
- Optimal imaging achieved with fresh samples at 37°C for both probes.
Conclusions:
- Temperature regulation and tissue handling are crucial for ex vivo imaging with enzyme-activatable probes.
- gGlu-HMRG allows for successful ex vivo imaging of thawed samples even at room temperature.
- These findings highlight potential pitfalls and optimization strategies for ex vivo fluorescence-guided surgery.
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