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Synthetic lethality of cohesins with PARPs and replication fork mediators
Jessica L McLellan1, Nigel J O'Neil, Irene Barrett
1Department of Medical Genetics, University of British Columbia, Vancouver, Canada.
Abstract:
Synthetic lethality has been proposed as a way to leverage the genetic differences found in tumor cells to affect their selective killing. Cohesins, which tether sister chromatids together until anaphase onset, are mutated in a variety of tumor types. The elucidation of synthetic lethal interactions with cohesin mutants therefore identifies potential therapeutic targets. We used a cross-species approach to identify robust negative genetic interactions with cohesin mutants. Utilizing essential and non-essential mutant synthetic genetic arrays in Saccharomyces cerevisiae, we screened genome-wide for genetic interactions with hypomorphic mutations in cohesin genes. A somatic cell proliferation assay in Caenorhabditis elegans demonstrated that the majority of interactions were conserved. Analysis of the interactions found that cohesin mutants require the function of genes that mediate replication fork progression. Conservation of these interactions between replication fork mediators and cohesin in both yeast and C. elegans prompted us to test whether other replication fork mediators not found in the yeast were required for viability in cohesin mutants. PARP1 has roles in the DNA damage response but also in the restart of stalled replication forks. We found that a hypomorphic allele of the C. elegans SMC1 orthologue, him-1(e879), genetically interacted with mutations in the orthologues of PAR metabolism genes resulting in a reduced brood size and somatic cell defects. We then demonstrated that this interaction is conserved in human cells by showing that PARP inhibitors reduce the viability of cultured human cells depleted for cohesin components. This work demonstrates that large-scale genetic interaction screening in yeast can identify clinically relevant genetic interactions and suggests that PARP inhibitors, which are currently undergoing clinical trials as a treatment of homologous recombination-deficient cancers, may be effective in treating cancers that harbor cohesin mutations.
Insights
Synthetic lethality exploits tumor cell genetic differences for selective killing. Targeting cohesin mutants with PARP inhibitors shows promise for treating cancers with cohesin mutations, based on cross-species genetic screening.
Area of Science:
- Genetics
- Cancer Biology
- Synthetic Lethality
Background:
- Cohesins are crucial for sister chromatid cohesion and are frequently mutated in various cancers.
- Synthetic lethality offers a strategy to selectively kill tumor cells by exploiting their genetic vulnerabilities.
- Identifying synthetic lethal interactions with cohesin mutants can reveal novel therapeutic targets.
Purpose of the Study:
- To identify robust negative genetic interactions with cohesin mutants using a cross-species approach.
- To investigate the functional requirements of cohesin mutants, particularly concerning replication fork progression.
- To determine if targeting PARP (Poly(ADP-ribose) polymerase) is synthetically lethal with cohesin mutations in human cells.
Main Methods:
- Genome-wide screening of synthetic genetic arrays in Saccharomyces cerevisiae to identify genetic interactions with cohesin mutants.
- Somatic cell proliferation assays in Caenorhabditis elegans to assess the conservation of identified interactions.
- Testing the effect of PARP inhibitors on the viability of human cells with depleted cohesin components.
Main Results:
- A cross-species screen identified conserved genetic interactions between cohesin mutants and genes involved in replication fork progression.
- Cohesin mutants require the function of replication fork mediators for viability.
- A hypomorphic allele of the C. elegans SMC1 orthologue interacted with mutations in PAR metabolism genes.
- PARP inhibitors reduced the viability of human cells lacking cohesin components, demonstrating conserved synthetic lethality.
Conclusions:
- Large-scale genetic interaction screening in yeast can identify clinically relevant synthetic lethal interactions.
- PARP inhibitors may be effective in treating cancers with cohesin mutations, similar to their use in homologous recombination-deficient cancers.
- This study provides a foundation for developing targeted therapies for cohesin-mutated cancers.
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