Related Experiment Video
Updated: Jul 12, 2026

A Fluorescence-based Protocol for Preliminary Screening of Protein Synthesis Inhibitors from Natural Sources
Published on: January 27, 2026
A chemical screen identifies anisomycin as an anoikis sensitizer that functions by decreasing FLIP protein synthesis
Imtiaz A Mawji1, Craig D Simpson, Marcela Gronda
1Ontario Cancer Institute, Princess Margaret Hospital, Mt Sinai Hospital, Toronto, Ontario, Canada.
Abstract:
Malignant epithelial cells with metastatic potential resist apoptosis that normally occurs upon loss of anchorage from the extracellular matrix, a process termed "anoikis." Resistance to anoikis enables malignant cells to survive in an anchorage-independent manner, which leads to the formation of distant metastases. To understand the regulation of anoikis, we designed, automated, and conducted a high-throughput chemical screen for anoikis sensitizers. PPC-1 anoikis-resistant prostate cancer cells were seeded in hydrogel-coated ultralow binding plates for suspension conditions and standard tissue culture plates to promote adhesion. After seeding, cells were treated with aliquots from a library of previously characterized small molecules, and viability was assessed using the 3-(4,5-dimethylthiazol-2-yl)-5-(3-carboxymethoxyphenyl)-2-(4-sulfophenyl)-2H-tetrazolium, inner salt, assay. From this chemical screen, we identified anisomycin that induced apoptosis in suspension conditions, but was not toxic to these cells grown under adherent conditions. Anisomycin sensitized cells to anoikis by decreasing levels of the caspase-8 inhibitor FLIP and subsequently activating the death receptor pathway of caspase activation. Although anisomycin activated c-Jun-NH(2)-kinase and p38, these kinases were not functionally important for the effect of anisomycin on anoikis and FLIP. Rather, anisomycin decreased FLIP and sensitized cells to anoikis by inhibiting its protein synthesis. Finally, we showed that anisomycin decreased distal tumor formation in a mouse model of prostate cancer metastases. Thus, a novel chemical screen identified anisomycin as an anoikis sensitizer that acts by decreasing FLIP protein synthesis. Our results suggest that FLIP is a suppressor of anoikis and inhibiting FLIP protein synthesis may be a useful antimetastatic strategy.
Insights
Anisomycin sensitizes cancer cells to anoikis, a cell death process triggered by loss of anchorage. This drug reduces metastasis by inhibiting FLIP protein synthesis, offering a potential anti-metastatic strategy.
Area of Science:
- Oncology
- Cell Biology
- Pharmacology
Background:
- Malignant cells resist anoikis, a form of apoptosis upon matrix detachment.
- Anoikis resistance promotes anchorage-independent survival and metastasis.
- Understanding anoikis regulation is crucial for developing anti-cancer therapies.
Purpose of the Study:
- To identify chemical compounds that sensitize cancer cells to anoikis.
- To elucidate the molecular mechanisms by which anoikis sensitization occurs.
- To evaluate the anti-metastatic potential of identified compounds.
Main Methods:
- High-throughput chemical screening of small molecules using PPC-1 prostate cancer cells.
- Assessing cell viability under adherent and suspension conditions using MTS assay.
- Analyzing protein levels of FLIP and activation of caspase pathways.
- Evaluating anti-metastatic efficacy in a mouse model.
Main Results:
- Anisomycin was identified as an anoikis sensitizer, inducing apoptosis in suspension but not adherent cells.
- Anisomycin decreased FLIP protein levels, activating caspase-8-mediated apoptosis.
- The anti-anoikis effect of anisomycin was independent of JNK and p38 kinases.
- Anisomycin inhibited FLIP protein synthesis, not its degradation.
- Anisomycin reduced distal tumor formation in vivo.
Conclusions:
- Anisomycin sensitizes cancer cells to anoikis by inhibiting FLIP protein synthesis.
- FLIP acts as an anoikis suppressor.
- Inhibiting FLIP protein synthesis represents a potential anti-metastatic strategy.
Related Concept Videos
Inhibitors of Bacterial Protein Synthesis
Antifungal Agents
Anaphase Promoting Complex

