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A Data Integration Workflow to Identify Drug Combinations Targeting Synthetic Lethal Interactions
Published on: May 27, 2021
RAS Synthetic Lethal Screens Revisited: Still Seeking the Elusive Prize?
1Signal Transduction Laboratory, Francis Crick Institute, London, United Kingdom. Lung Cancer Group, The Institute of Cancer Research, London, United Kingdom. julian.downward@cancer.org.uk.
Abstract:
The RAS genes are critical oncogenic drivers activated by point mutation in some 20% of human malignancies. However, no pharmacologic approaches to targeting RAS proteins directly have yet succeeded, leading to suggestions that these proteins may be "undruggable." This has led to two alternative indirect approaches to targeting RAS function in cancer. One has been to target RAS signaling pathways downstream at tractable enzymes such as kinases, particularly in combination. The other, which is the focus of this review, has been to seek targets that are essential in cells bearing an activated RAS oncogene, but not those without. This synthetic lethal approach, while rooted in ideas from invertebrate genetics, has been inspired most strongly by the successful use of PARP inhibitors, such as olaparib, in the clinic to treat BRCA defective cancers. Several large-scale screens have been carried out using RNA interference-mediated expression silencing to find genes that are uniquely essential to RAS-mutant but not wild-type cells. These screens have been notable for the low degree of overlap between their results, with the possible exception of proteasome components, and have yet to lead to successful new clinical approaches to the treatment of RAS-mutant cancers. Possible reasons for these disappointing results are discussed here, along with a reevaluation of the approaches taken. On the basis of experience to date, RAS synthetic lethality has so far fallen some way short of its original promise and remains unproven as an approach to finding effective new ways of tackling RAS-mutant cancers. Clin Cancer Res; 21(8); 1802-9. ©2015 AACR. See all articles in this CCR Focus section, "Targeting RAS-Driven Cancers."
Insights
Targeting RAS-mutant cancers via synthetic lethality has shown limited success. Researchers are re-evaluating strategies to find essential genes in RAS-driven tumors for effective cancer therapies.
Area of Science:
- Oncology
- Genetics
- Pharmacology
Background:
- RAS genes are key drivers in 20% of human cancers, but direct targeting remains challenging.
- Indirect strategies include targeting downstream pathways or exploiting synthetic lethality.
- Synthetic lethality aims to identify genes essential for RAS-mutant cells but not wild-type cells.
Discussion:
- Large-scale RNA interference screens have identified potential synthetic lethal targets.
- Limited overlap in screen results, except for proteasome components, hinders progress.
- Current synthetic lethal approaches have not yet yielded successful clinical treatments for RAS-mutant cancers.
Key Insights:
- The synthetic lethal approach, inspired by PARP inhibitors for BRCA-deficient cancers, has not yet proven effective for RAS-mutant cancers.
- Despite extensive screening, a lack of consistent target identification poses a significant challenge.
- Re-evaluation of current strategies is necessary to overcome these limitations.
Outlook:
- Further research is needed to refine screening methods and identify reliable synthetic lethal targets.
- Exploring novel therapeutic strategies beyond current synthetic lethal approaches may be required.
- The clinical utility of synthetic lethality for RAS-driven cancers remains to be demonstrated.
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