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Published on: May 27, 2021
Synthetic lethal targeting of RNF20 through PARP1 silencing and inhibition
Brent J Guppy1,2, Kirk J McManus3,4
1Department of Biochemistry & Medical Genetics, University of Manitoba, Winnipeg, MB, Canada.
Purpose:
The identification of novel therapeutic targets that exploit the aberrant genetics driving oncogenesis is critical to better combat cancer. RNF20 is somatically altered in numerous cancers, and its diminished expression drives genome instability, a driving factor of oncogenesis. Accordingly, we sought to determine whether PARP1 silencing and inhibition could preferentially kill RNF20-deficient cells using a synthetic lethal strategy.
Methods:
RNF20 and PARP1 were silenced using RNAi-based approaches. Direct synthetic lethal tests were performed by silencing RNF20 with and without PARP1 and the impact on cell numbers was evaluated using semi-quantitative imaging microscopy. Next, Olaparib and BMN673 (PARP1 inhibitors) were evaluated for their ability to induce preferential killing in RNF20 silenced cells, while real-time cell analyses were used to distinguish cell cytotoxicity from cell cycle arrest. Finally, quantitative imaging microscopy was employed to evaluate marks associated with DNA double-strand breaks (γ-H2AX) and apoptosis (cleaved Caspase-3).
Results:
We found that PARP1 silencing resulted in a decrease in number of RNF20 silenced cells relative to controls. We further found that Olaparib and BMN673 treatments also resulted in fewer RNF20 silenced cells relative to controls. Finally, we found by quantitative imaging microscopy that RNF20 silenced cells treated with BMN673 exhibited significant increases in γ-H2AX and cleaved Caspase-3, suggesting that these treatments induce DNA double-strand breaks that are not adequately repaired within RNF20-silenced cells.
Conclusions:
Collectively, our data indicate that RNF20 and PARP1 are synthetic lethal interactors, suggesting that cancers with diminished RNF20 expression and/or function may be susceptible to PARP1 inhibitors.
Insights
RNF20 deficiency creates vulnerabilities exploitable by PARP1 inhibitors. Silencing RNF20 (Ring Finger Protein 20) and inhibiting PARP1 (Poly ADP-Ribose Polymerase 1) leads to synthetic lethality, preferentially killing cancer cells with low RNF20.
Area of Science:
- Oncology
- Cancer Genetics
- Synthetic Lethality
Background:
- Aberrant cancer genetics drive oncogenesis, necessitating novel therapeutic targets.
- RNF20 alterations are common in cancers, with diminished expression promoting genome instability.
- Identifying synthetic lethal interactions is a key strategy to combat cancer.
Purpose of the Study:
- To investigate if PARP1 (Poly ADP-Ribose Polymerase 1) silencing and inhibition can selectively eliminate RNF20-deficient cancer cells.
- To explore the synthetic lethal relationship between RNF20 and PARP1 as a potential cancer therapy.
Main Methods:
- RNA interference (RNAi) was used to silence RNF20 and PARP1.
- Cell numbers were assessed after RNF20/PARP1 silencing and treatment with PARP1 inhibitors (Olaparib, BMN673).
- DNA damage (γ-H2AX) and apoptosis (cleaved Caspase-3) markers were quantified using imaging microscopy.
Main Results:
- PARP1 silencing significantly reduced the number of RNF20-silenced cells.
- PARP1 inhibitors Olaparib and BMN673 preferentially killed RNF20-silenced cells.
- BMN673 treatment increased DNA double-strand breaks and apoptosis markers in RNF20-silenced cells.
Conclusions:
- RNF20 and PARP1 exhibit synthetic lethality.
- Cancers with reduced RNF20 expression or function may be sensitive to PARP1 inhibitors.
- This suggests a potential therapeutic strategy targeting RNF20-deficient cancers.
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