Related Experiment Video
Updated: Jun 10, 2026

Fission Yeast as a Platform for Antibacterial Drug Screens Targeting Bacterial Cytoskeleton Proteins
Published on: April 26, 2024
A yeast-based genomic strategy highlights the cell protein networks altered by FTase inhibitor peptidomimetics
Giampiero Porcu1, Cathal Wilson, Daniele Di Giandomenico
1Department of Biology, University of Rome Tor Vergata, Italy.
Background:
Farnesyltransferase inhibitors (FTIs) are anticancer agents developed to inhibit Ras oncoprotein activities. FTIs of different chemical structure act via a conserved mechanism in eukaryotic cells. They have low toxicity and are active on a wide range of tumors in cellular and animal models, independently of the Ras activation state. Their ultimate mechanism of action, however, remains undetermined. FTase has hundred of substrates in human cells, many of which play a pivotal role in either tumorigenesis or in pro-survival pathways. This lack of knowledge probably accounts for the failure of FTIs at clinical stage III for most of the malignancies treated, with the notable exception of haematological malignancies. Understanding which cellular pathways are the ultimate targets of FTIs in different tumor types and the basis of FTI resistance is required to improve the efficacy of FTIs in cancer treatment.
Results:
Here we used a yeast-based cellular assay to define the transcriptional changes consequent to FTI peptidomimetic administration in conditions that do not substantially change Ras membrane/cytosol distribution. Yeast and cancer cell lines were used to validate the results of the network analysis. The transcriptome of yeast cells treated with FTase inhibitor I was compared with that of untreated cells and with an isogenic strain genetically inhibited for FTase activity (Deltaram1). Cells treated with GGTI-298 were analyzed in a parallel study to validate the specificity of the FTI response. Network analysis, based on gene ontology criteria, identified a cell cycle gene cluster up-regulated by FTI treatment that has the Aurora A kinase IPL1 and the checkpoint protein MAD2 as hubs. Moreover, TORC1-S6K-downstream effectors were found to be down-regulated in yeast and mammalian FTI-treated cells. Notably only FTIs, but not genetic inhibition of FTase, elicited up-regulation of ABC/transporters.
Conclusions:
This work provides a view of how FTIs globally affect cell activity. It suggests that the chromosome segregation machinery and Aurora A association with the kinetochore as well as TORC1-S6K downstream effectors are among the ultimate targets affected by the transcriptional deregulation caused by FTI peptidomimetics. Moreover, it stresses the importance of monitoring the MDR response in patients treated with FTIs.
Insights
Farnesyltransferase inhibitors (FTIs) impact cancer cells by altering cell cycle and gene expression, affecting chromosome segregation and TORC1-S6K pathways. Monitoring multidrug resistance (MDR) is crucial for FTI cancer therapy.
Area of Science:
- Molecular Biology
- Cancer Research
- Yeast Genetics
Background:
- Farnesyltransferase inhibitors (FTIs) target Ras oncoprotein activity, showing broad anticancer potential with low toxicity.
- Despite conserved mechanisms, the precise molecular targets and pathways affected by FTIs remain largely undetermined.
- Understanding FTI mechanisms is crucial for improving efficacy, especially given clinical trial failures in solid tumors but success in hematological malignancies.
Purpose of the Study:
- To elucidate the global transcriptional changes induced by FTI peptidomimetics.
- To identify the ultimate cellular targets and pathways affected by FTIs.
- To investigate the basis of FTI resistance and inform therapeutic strategies.
Main Methods:
- Utilized a yeast-based cellular assay to analyze transcriptional changes upon FTI administration.
- Employed network analysis based on gene ontology to identify key regulatory hubs.
- Validated findings in yeast and mammalian cancer cell lines, including comparisons with genetic FTase inhibition and GGTI-298 treatment.
Main Results:
- FTI treatment upregulated a cell cycle gene cluster involving Aurora A kinase (IPL1) and MAD2.
- TORC1-S6K downstream effectors were downregulated in both yeast and mammalian FTI-treated cells.
- FTIs, unlike genetic inhibition, induced upregulation of ABC/transporters, suggesting a multidrug resistance (MDR) response.
Conclusions:
- FTIs globally impact cellular activity, targeting chromosome segregation machinery and Aurora A kinase association.
- TORC1-S6K pathway effectors are identified as downstream targets of FTI-induced transcriptional deregulation.
- Monitoring multidrug resistance (MDR) is essential for patients undergoing FTI cancer treatment.

