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Molecular Basis of XRN2-Deficient Cancer Cell Sensitivity to Poly(ADP-ribose) Polymerase Inhibition
Talysa Viera1, Quinn Abfalterer1, Alyssa Neal1
1Department of Chemistry, New Mexico Institute of Mining and Technology, Socorro, NM 87801, USA.
Abstract:
R-loops (RNA-DNA hybrids with displaced single-stranded DNA) have emerged as a potent source of DNA damage and genomic instability. The termination of defective RNA polymerase II (RNAPII) is one of the major sources of R-loop formation. 5'-3'-exoribonuclease 2 (XRN2) promotes genome-wide efficient RNAPII termination, and XRN2-deficient cells exhibit increased DNA damage emanating from elevated R-loops. Recently, we showed that DNA damage instigated by XRN2 depletion in human fibroblast cells resulted in enhanced poly(ADP-ribose) polymerase 1 (PARP1) activity. Additionally, we established a synthetic lethal relationship between XRN2 and PARP1. However, the underlying cellular stress response promoting this synthetic lethality remains elusive. Here, we delineate the molecular consequences leading to the synthetic lethality of XRN2-deficient cancer cells induced by PARP inhibition. We found that XRN2-deficient lung and breast cancer cells display sensitivity to two clinically relevant PARP inhibitors, Rucaparib and Olaparib. At a mechanistic level, PARP inhibition combined with XRN2 deficiency exacerbates R-loop and DNA double-strand break formation in cancer cells. Consistent with our previous findings using several different siRNAs, we also show that XRN2 deficiency in cancer cells hyperactivates PARP1. Furthermore, we observed enhanced replication stress in XRN2-deficient cancer cells treated with PARP inhibitors. Finally, the enhanced stress response instigated by compromised PARP1 catalytic function in XRN2-deficient cells activates caspase-3 to initiate cell death. Collectively, these findings provide mechanistic insights into the sensitivity of XRN2-deficient cancer cells to PARP inhibition and strengthen the underlying translational implications for targeted therapy.
Insights
Deficiency in XRN2 (5’-3’-exonuclease 2) leads to R-loop accumulation and DNA damage. Combining XRN2 deficiency with PARP inhibitors triggers synthetic lethality in cancer cells via enhanced DNA damage and cell death.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- R-loops (RNA-DNA hybrids) are a source of genomic instability and DNA damage.
- 5'-3'-exonuclease 2 (XRN2) deficiency increases R-loops and DNA damage due to impaired RNA polymerase II termination.
- XRN2 deficiency leads to heightened poly(ADP-ribose) polymerase 1 (PARP1) activity and a synthetic lethal interaction with PARP1.
Purpose of the Study:
- To investigate the molecular mechanisms underlying the synthetic lethality of XRN2-deficient cancer cells treated with PARP inhibitors.
- To delineate the cellular stress response pathways activated by combined XRN2 deficiency and PARP inhibition.
Main Methods:
- Utilized XRN2-deficient lung and breast cancer cell lines.
- Administered clinically relevant PARP inhibitors (Rucaparib, Olaparib).
- Assessed R-loop and DNA double-strand break formation, PARP1 activity, replication stress, and caspase-3 activation.
Main Results:
- XRN2-deficient cancer cells are sensitive to PARP inhibitors.
- Combined XRN2 deficiency and PARP inhibition exacerbate R-loop and DNA double-strand break formation.
- XRN2 deficiency hyperactivates PARP1, leading to increased replication stress upon PARP inhibition.
- This enhanced stress response activates caspase-3, inducing cancer cell death.
Conclusions:
- PARP inhibition triggers synthetic lethality in XRN2-deficient cancer cells by amplifying R-loop-associated DNA damage and replication stress.
- The findings provide mechanistic insights into the sensitivity of these cells to PARP inhibitors.
- This study supports the translational potential of targeting XRN2-deficient cancers with PARP inhibitors.
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