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Updated: Feb 12, 2026

Author Spotlight: Advancing the Detection of Low-Frequency Mutations in Cancer Tissues
Published on: August 23, 2024
Somatic mutation of the cohesin complex subunit confers therapeutic vulnerabilities in cancer
Yunhua Liu1,2,3,4, Hanchen Xu1,2,3, Kevin Van der Jeught2,3
1Institute of Digestive Diseases, Longhua Hospital, Shanghai University of Traditional Chinese Medicine, Shanghai, China.
Abstract:
A synthetic lethality-based strategy has been developed to identify therapeutic targets in cancer harboring tumor-suppressor gene mutations, as exemplified by the effectiveness of poly ADP-ribose polymerase (PARP) inhibitors in BRCA1/2-mutated tumors. However, many synthetic lethal interactors are less reliable due to the fact that such genes usually do not perform fundamental or indispensable functions in the cell. Here, we developed an approach to identifying the "essential lethality" arising from these mutated/deleted essential genes, which are largely tolerated in cancer cells due to genetic redundancy. We uncovered the cohesion subunit SA1 as a putative synthetic-essential target in cancers carrying inactivating mutations of its paralog, SA2. In SA2-deficient Ewing sarcoma and bladder cancer, further depletion of SA1 profoundly and specifically suppressed cancer cell proliferation, survival, and tumorigenic potential. Mechanistically, inhibition of SA1 in the SA2-mutated cells led to premature chromatid separation, dramatic extension of mitotic duration, and consequently, lethal failure of cell division. More importantly, depletion of SA1 rendered those SA2-mutated cells more susceptible to DNA damage, especially double-strand breaks (DSBs), due to reduced functionality of DNA repair. Furthermore, inhibition of SA1 sensitized the SA2-deficient cancer cells to PARP inhibitors in vitro and in vivo, providing a potential therapeutic strategy for patients with SA2-deficient tumors.
Insights
Researchers identified essential lethality in cancer by targeting SA1 in tumors with SA2 mutations. This approach suppresses cancer growth and increases sensitivity to PARP inhibitors, offering a new therapeutic strategy.
Area of Science:
- Cancer biology
- Synthetic lethality
- Genetics
Background:
- Synthetic lethality strategies, like PARP inhibitors for BRCA1/2 mutations, target cancer vulnerabilities.
- Identifying reliable synthetic lethal interactors is challenging as these genes often lack essential functions.
- Essential lethality exploits genetic redundancy, targeting mutated essential genes in cancer.
Purpose of the Study:
- To develop an approach for identifying essential lethality targets in cancer.
- To investigate the role of cohesion subunit SA1 as a synthetic-essential target in cancers with SA2 mutations.
Main Methods:
- Developed an approach to identify essential lethality from mutated/deleted essential genes.
- Utilized SA1 depletion in SA2-deficient Ewing sarcoma and bladder cancer models.
- Investigated the mechanistic consequences of SA1 inhibition on cell division and DNA repair.
Main Results:
- SA1 was identified as a synthetic-essential target in cancers with inactivating SA2 mutations.
- SA1 depletion significantly suppressed proliferation, survival, and tumorigenic potential in SA2-deficient cancers.
- SA1 inhibition caused premature chromatid separation, prolonged mitosis, and increased susceptibility to DNA double-strand breaks.
Conclusions:
- SA1 is a promising synthetic-essential target for treating SA2-mutated cancers.
- SA1 inhibition disrupts cell division and DNA repair, leading to cancer cell death.
- Targeting SA1 sensitizes SA2-deficient cancers to PARP inhibitors, suggesting a novel therapeutic avenue.
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