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R-loop processing via REXO4-RNaseH1-mediated endo- and exo-cleavage coupling mode prevents genome instability and
Han Yang1, Chen Nie1, Yingyu Qin1
1Department of Radiation Medicine, School of Basic Medical Sciences, Peking University Health Science Center, Beijing 100191, China.
Abstract:
R-loop metabolism is closely associated with genome stability and tumors. Here, we identify an exonuclease REXO4, which collaborates with RNaseH1 endonuclease to degrade R-loops in an "endo/exo-cleavage coupling" manner. Specifically, REXO4 directly degrades the RNA strand in R-loops from the end or internal nick through its 3'-5' exonuclease activity and stimulates RNaseH1 endonuclease activity. The genome-wide R-loop regions regulated by REXO4 highly overlap with those regulated by RNaseH1, and REXO4 overexpression counteracts genome-wide R-loop accumulation caused by RNaseH1 deficiency. Furthermore, REXO4-deficient tumors display elevated R-loop mutation burden, and tumor patient-derived mutations in REXO4 enzymatic region all impair R-loop cleavage activity. Besides, we identify a compound 17 (named REXO4-IN-17) capable of inhibiting REXO4 nuclease activity. Interfering with REXO4 increases the sensitivity of tumor cells to alkylating and G4 stabilizing chemotherapeutic drugs and activates cGAS-mediated antitumor immunity. Therefore, our study proposes an endo/exo-cleavage coupling the R-loop processing model, which provides additional insights into the link between R-loop-associated genome instability, antitumor immunity, and tumors.
Insights
Researchers discovered exonuclease REXO4, which works with RNaseH1 to degrade R-loops, crucial for genome stability and cancer. This finding offers new insights into R-loop processing and potential cancer therapies.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- R-loop metabolism is linked to genome stability and tumor development.
- Understanding R-loop regulation is crucial for cancer research.
Purpose of the Study:
- To identify novel factors involved in R-loop degradation.
- To elucidate the mechanism of R-loop processing and its role in cancer.
Main Methods:
- Identification and characterization of exonuclease REXO4.
- Analysis of REXO4's collaboration with RNaseH1.
- Genome-wide R-loop profiling.
- Tumor mutation analysis.
- Drug sensitivity assays.
Main Results:
- REXO4 collaborates with RNaseH1 in an "endo/exo-cleavage coupling" manner to degrade R-loops.
- REXO4 degrades the RNA strand and stimulates RNaseH1 activity.
- REXO4 deficiency leads to increased R-loop burden and mutations in tumors.
- A novel inhibitor (REXO4-IN-17) of REXO4 was identified.
- Inhibition of REXO4 enhances sensitivity to chemotherapy and activates antitumor immunity.
Conclusions:
- A novel R-loop processing model involving "endo/exo-cleavage coupling" is proposed.
- REXO4 plays a critical role in maintaining genome stability by regulating R-loops.
- Targeting REXO4 presents a potential therapeutic strategy for cancer treatment and immunotherapy.
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