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Updated: Apr 4, 2026

A Data Integration Workflow to Identify Drug Combinations Targeting Synthetic Lethal Interactions
Published on: May 27, 2021
Targeting SOD1 induces synthetic lethal killing in BLM- and CHEK2-deficient colorectal cancer cells
Babu V Sajesh1,2, Kirk J McManus1,2
1Department of Biochemistry and Medical Genetics, University of Manitoba, Winnipeg, Manitoba, Canada.
Abstract:
Cancer is a major cause of death throughout the world, and there is a large need for better and more personalized approaches to combat the disease. Over the past decade, synthetic lethal approaches have been developed that are designed to exploit the aberrant molecular origins (i.e. defective genes) that underlie tumorigenesis. BLM and CHEK2 are two evolutionarily conserved genes that are somatically altered in a number of tumor types. Both proteins normally function in preserving genome stability through facilitating the accurate repair of DNA double strand breaks. Thus, uncovering synthetic lethal interactors of BLM and CHEK2 will identify novel candidate drug targets and lead chemical compounds. Here we identify an evolutionarily conserved synthetic lethal interaction between SOD1 and both BLM and CHEK2 in two distinct cell models. Using quantitative imaging microscopy, real-time cellular analyses, colony formation and tumor spheroid models we show that SOD1 silencing and inhibition (ATTM and LCS-1 treatments), or the induction of reactive oxygen species (2ME2 treatment) induces selective killing within BLM- and CHEK2-deficient cells relative to controls. We further show that increases in reactive oxygen species follow SOD1 silencing and inhibition that are associated with the persistence of DNA double strand breaks, and increases in apoptosis. Collectively, these data identify SOD1 as a novel candidate drug target in BLM and CHEK2 cancer contexts, and further suggest that 2ME2, ATTM and LCS-1 are lead therapeutic compounds warranting further pre-clinical study.
Insights
Synthetic lethality was discovered between SOD1 and BLM/CHEK2 genes in cancer. Targeting SOD1 selectively kills BLM- and CHEK2-deficient cancer cells, offering new therapeutic strategies.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Cancer remains a leading global cause of death, necessitating novel therapeutic strategies.
- Synthetic lethality approaches exploit cancer-specific genetic defects for targeted treatment.
- BLM and CHEK2 are key genes in DNA double-strand break repair, frequently altered in tumors.
Purpose of the Study:
- To identify synthetic lethal interactions with BLM and CHEK2.
- To explore SOD1 as a potential drug target in BLM- and CHEK2-deficient cancers.
- To evaluate therapeutic compounds targeting SOD1.
Main Methods:
- Utilized quantitative imaging microscopy and real-time cellular analyses.
- Employed colony formation and tumor spheroid assays.
- Investigated the effects of SOD1 silencing/inhibition and reactive oxygen species induction.
Main Results:
- Identified a conserved synthetic lethal interaction between SOD1 and BLM/CHEK2.
- SOD1 inhibition or reactive oxygen species induction selectively killed BLM- and CHEK2-deficient cells.
- Observed increased DNA double-strand breaks, reactive oxygen species, and apoptosis following SOD1 manipulation.
Conclusions:
- SOD1 is a novel therapeutic target in BLM- and CHEK2-altered cancers.
- Compounds 2ME2, ATTM, and LCS-1 show promise as lead compounds for pre-clinical development.
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