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Published on: August 23, 2024
FANCA Deficiency Induces Oncogenic R-Loop Dependent Synthetic Lethality with PARP1 Inhibitors
Gaorav Gupta1, Qinhong Wang1, Simon Ellington1
1University of North Carolina at Chapel Hill.
Abstract:
Synthetic lethality (SL) underlies the success of PARP1 inhibitors (PARPi) in treating homologous recombination (HR) deficient cancers, but extending this paradigm to other DNA damage response (DDR) deficiencies has proven challenging. We performed an in vivo CRISPR screen to identify DDR gene mutations that both enhance tumorigenesis and confer sensitivity to PARPi. Our screen identified FANCA deficiency as a driver of PARPi SL that was validated across diverse human cancer models. FANCA deficiency does not impair HR but disrupts Okazaki fragment maturation (OFM), causing lagging strand gaps and RPA exhaustion upon PARPi treatment. These effects require FANCA interaction with FEN1, independently of its canonical role in interstrand crosslink repair. We find FANCA-mediated FEN1 recruitment is required for OFM at oncogene-associated R loops during PARPi treatment. These findings establish a novel and non-canonical function for FANCA in FEN1-mediated OFM that can be leveraged for PARPi synthetic lethality in FANCA-mutant cancers.
Insights
FANCA deficiency causes synthetic lethality with PARP1 inhibitors by disrupting DNA replication, offering new therapeutic strategies for FANCA-mutant cancers.
Area of Science:
- Genetics
- Molecular Biology
- Cancer Research
Background:
- Synthetic lethality (SL) is key to PARP1 inhibitor (PARPi) efficacy in homologous recombination (HR) deficient cancers.
- Expanding SL to other DNA damage response (DDR) deficiencies remains a challenge.
Purpose of the Study:
- To identify novel DDR gene mutations conferring PARPi sensitivity using in vivo CRISPR screening.
- To explore the mechanism of FANCA deficiency in driving PARPi synthetic lethality.
Main Methods:
- In vivo CRISPR screening to identify DDR genes impacting tumorigenesis and PARPi sensitivity.
- Validation of FANCA deficiency in diverse human cancer models.
- Investigating the molecular mechanisms of FANCA's role in DNA repair and PARPi response.
Main Results:
- FANCA deficiency was identified as a driver of PARPi synthetic lethality.
- FANCA deficiency disrupts Okazaki fragment maturation (OFM), leading to DNA gaps and RPA exhaustion under PARPi treatment.
- This function requires FANCA's interaction with FEN1, independent of its role in interstrand crosslink repair.
Conclusions:
- FANCA plays a novel, non-canonical role in FEN1-mediated OFM, particularly at R loops during PARPi treatment.
- This mechanism provides a new avenue for leveraging PARPi synthetic lethality in FANCA-mutant cancers.
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