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Updated: Jan 30, 2026

A Data Integration Workflow to Identify Drug Combinations Targeting Synthetic Lethal Interactions
Published on: May 27, 2021
Synthetic lethality guiding selection of drug combinations in ovarian cancer
Andreas Heinzel1,2, Maximilian Marhold3, Paul Mayer1
1Emergentec biodevelopment GmbH, Vienna, Austria.
Background:
Synthetic lethality describes a relationship between two genes where single loss of either gene does not trigger significant impact on cell viability, but simultaneous loss of both gene functions results in lethality. Targeting synthetic lethal interactions with drug combinations promises increased efficacy in tumor therapy.
Materials And Methods:
We established a set of synthetic lethal interactions using publicly available data from yeast screens which were mapped to their respective human orthologs using information from orthology databases. This set of experimental synthetic lethal interactions was complemented by a set of predicted synthetic lethal interactions based on a set of protein meta-data like e.g. molecular pathway assignment. Based on the combined set, we evaluated drug combinations used in late stage clinical development (clinical phase III and IV trials) or already in clinical use for ovarian cancer with respect to their effect on synthetic lethal interactions. We furthermore identified a set of drug combinations currently not being tested in late stage ovarian cancer clinical trials that however have impact on synthetic lethal interactions thus being worth of further investigations regarding their therapeutic potential in ovarian cancer.
Results:
Twelve of the tested drug combinations addressed a synthetic lethal interaction with the anti-VEGF inhibitor bevacizumab in combination with paclitaxel being the most studied drug combination addressing the synthetic lethal pair between VEGFA and BCL2. The set of 84 predicted drug combinations for example holds the combination of the PARP inhibitor olaparib and paclitaxel, which showed efficacy in phase II clinical studies.
Conclusion:
A set of drug combinations currently not tested in late stage ovarian cancer clinical trials was identified having impact on synthetic lethal interactions thus being worth of further investigations regarding their therapeutic potential in ovarian cancer.
Insights
Synthetic lethality, where losing two genes is lethal but losing one is not, offers new ovarian cancer drug targets. This study identified promising drug combinations for future clinical trials by analyzing known and predicted synthetic lethal interactions.
Area of Science:
- Genetics
- Pharmacology
- Oncology
Background:
- Synthetic lethality is a genetic interaction where simultaneous loss of two genes causes cell death, unlike the loss of a single gene.
- Targeting synthetic lethal interactions with drug combinations is a promising strategy for enhancing tumor therapy efficacy.
Purpose of the Study:
- To identify and evaluate drug combinations targeting synthetic lethal interactions for ovarian cancer treatment.
- To discover novel therapeutic strategies by analyzing existing and predicted synthetic lethal interactions.
Main Methods:
- Established synthetic lethal interactions from yeast screens and human orthologs.
- Predicted synthetic lethal interactions using protein meta-data and molecular pathway assignments.
- Evaluated drug combinations in late-stage clinical development or in clinical use for ovarian cancer.
Main Results:
- Twelve drug combinations targeting synthetic lethal interactions were identified, with bevacizumab and paclitaxel targeting VEGFA and BCL2 being the most studied.
- A set of 84 predicted drug combinations, including olaparib and paclitaxel (a PARP inhibitor combination), showed potential efficacy.
Conclusions:
- Identified drug combinations not currently in late-stage ovarian cancer trials that impact synthetic lethal interactions.
- These combinations warrant further investigation for their therapeutic potential in ovarian cancer.
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