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A Data Integration Workflow to Identify Drug Combinations Targeting Synthetic Lethal Interactions
Published on: May 27, 2021
Paralog-based synthetic lethality: rationales and applications
1The Innovation Center, Beijing StoneWise Technology Co Ltd., Beijing, China.
Abstract:
Tumor cells can result from gene mutations and over-expression. Synthetic lethality (SL) offers a desirable setting where cancer cells bearing one mutated gene of an SL gene pair can be specifically targeted by disrupting the function of the other genes, while leaving wide-type normal cells unharmed. Paralogs, a set of homologous genes that have diverged from each other as a consequence of gene duplication, make the concept of SL feasible as the loss of one gene does not affect the cell's survival. Furthermore, homozygous loss of paralogs in tumor cells is more frequent than singletons, making them ideal SL targets. Although high-throughput CRISPR-Cas9 screenings have uncovered numerous paralog-based SL pairs, the unclear mechanisms of targeting these gene pairs and the difficulty in finding specific inhibitors that exclusively target a single but not both paralogs hinder further clinical development. Here, we review the potential mechanisms of paralog-based SL given their function and genetic combination, and discuss the challenge and application prospects of paralog-based SL in cancer therapeutic discovery.
Insights
Synthetic lethality (SL) targets cancer cells by exploiting gene mutations. Paralog-based SL offers a promising strategy for cancer therapeutics, though challenges remain in clinical development.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Cancer arises from gene mutations and overexpression.
- Synthetic lethality (SL) exploits gene pairs to selectively kill cancer cells.
- Paralogs, duplicated homologous genes, are frequent targets in tumor cells.
Purpose of the Study:
- To review mechanisms of paralog-based SL.
- To discuss challenges and prospects of paralog-SL in cancer therapy.
Main Methods:
- Review of existing literature on paralog-based synthetic lethality.
- Analysis of functional and genetic interactions of paralog gene pairs.
- Discussion of CRISPR-Cas9 screening data.
Main Results:
- Paralogs are ideal SL targets due to frequent homozygous loss in tumors.
- High-throughput screenings identified numerous paralog-SL pairs.
- Mechanistic understanding and specific inhibitor development are key challenges.
Conclusions:
- Paralog-based SL holds significant therapeutic potential for cancer treatment.
- Further research is needed to overcome challenges in targeting paralog pairs.
- Understanding mechanisms is crucial for clinical application of paralog-SL.
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