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Published on: May 27, 2021
Deficiency in POLE Exonuclease Causes Synthetic Lethality in Highly Aneuploid Cancer Cells
Eun Jung Kim1, Dexter X Jin2, Alejandro M Chibly3
1Translational Medicine Oncology, Genentech Inc., South San Francisco, California.
Abstract:
Aneuploidy is a hallmark of cancer and is associated with drug resistance and poor clinical outcomes across diverse cancer types. However, no therapies have been clinically established to target highly aneuploid tumors. By analyzing nearly half a million tumor samples subjected to comprehensive genomic profiling, we identified a striking mutual exclusivity between POLE exonuclease domain mutations and high aneuploidy burden. This observation was independently validated using data from The Cancer Genome Atlas (TCGA) and the Cancer Cell Line Encyclopedia (CCLE). Probabilistic modeling revealed that the elevated quantity and unique spectrum of mutations induced by POLE exonuclease deficiency increase the likelihood of inactivating essential genes on chromosome arms harboring losses, leading to a synthetic lethal phenotype in highly aneuploid cells. Functional experiments demonstrated that POLE exonuclease activity is essential for the viability of highly aneuploid cancer cell lines but dispensable in diploid cells. These findings suggest that selective inhibition of POLE exonuclease activity may represent a promising therapeutic strategy for targeting highly aneuploid tumors.
Significance:
An integrated approach using large-scale genomic analyses, probabilistic modeling and functional validation identified POLE exonuclease as a potential synthetic lethal target to overcome cancer aneuploidy.
Insights
High aneuploidy in tumors, linked to poor outcomes, may be targeted by inhibiting POLE exonuclease activity. This approach exploits a synthetic lethal interaction discovered in cancer cells with high aneuploidy and POLE mutations.
Area of Science:
- Cancer genomics
- Molecular oncology
- Synthetic lethality
Background:
- Aneuploidy is a common feature in cancer, correlating with drug resistance and adverse clinical outcomes.
- Despite its prevalence, effective therapies specifically targeting highly aneuploid tumors remain elusive.
Purpose of the Study:
- To identify potential therapeutic vulnerabilities in highly aneuploid tumors.
- To investigate the relationship between aneuploidy and specific genetic mutations, such as those in POLE.
Main Methods:
- Analysis of comprehensive genomic profiling data from nearly half a million tumor samples.
- Validation using datasets from The Cancer Genome Atlas (TCGA) and the Cancer Cell Line Encyclopedia (CCLE).
- Probabilistic modeling and functional experiments to assess the impact of POLE mutations on aneuploid cells.
Main Results:
- A significant mutual exclusivity was observed between POLE exonuclease domain mutations and high aneuploidy.
- POLE exonuclease deficiency induces a unique mutation spectrum that can lead to synthetic lethality in aneuploid cells.
- POLE exonuclease activity is critical for the survival of highly aneuploid cancer cells but not diploid cells.
Conclusions:
- Selective inhibition of POLE exonuclease activity presents a potential therapeutic strategy for highly aneuploid cancers.
- This approach leverages a synthetic lethal interaction dependent on both aneuploidy and POLE mutation status.
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