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Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Implication of checkpoint kinase-dependent up-regulation of ribonucleotide reductase R2 in DNA damage response
Yong-Wei Zhang1, Tamara L Jones, Scott E Martin
1Laboratory of Molecular Pharmacology, Genetics Branch, Center for Cancer Research, NCI, National Institutes of Health, Bethesda, Maryland 20892, USA.
Abstract:
To investigate drug mechanisms of action and identify molecular targets for the development of rational drug combinations, we conducted synthetic small interfering RNA (siRNA)-based RNAi screens to identify genes whose silencing affects anti-cancer drug responses. Silencing of RRM1 and RRM2, which encode the large and small subunits of the human ribonucleotide reductase complex, respectively, markedly enhanced the cytotoxicity of the topoisomerase I inhibitor camptothecin (CPT). Silencing of RRM2 was also found to enhance DNA damage as measured by histone gamma-H2AX. Further studies showed that CPT up-regulates both RRM1 and RRM2 mRNA and protein levels and induces the nuclear translocation of RRM2. The checkpoint kinase 1 (Chk1) was up-regulated and activated in response to CPT, and CHEK1 down-regulation by siRNA and small molecule inhibitors of Chk1 blocked RRM2 induction by CPT. CHEK1 siRNA also suppressed E2F1 up-regulation by CPT, and silencing of E2F1 suppressed the up-regulation of RRM2. Silencing of ATR or ATM and inhibition of ATM activity by KU-55933 blocked Chk1 activation and RRM2 up-regulation. This study links the known components of CPT-induced DNA damage response with proteins required for the synthesis of dNTPs and DNA repair. Specifically, we propose that upon DNA damage, Chk1 activation, mediated by ATM and ATR, up-regulates RRM2 expression through the E2F1 transcription factor. Up-regulation in RRM2 expression levels coupled with its nuclear recruitment suggests an active role for ribonucleotide reductase in the cellular response to CPT-mediated DNA damage that could potentially be exploited as a strategy for enhancing the efficacy of topoisomerase I inhibitors.
Insights
Silencing ribonucleotide reductase subunits RRM1 and RRM2 enhances anti-cancer drug camptothecin (CPT) effectiveness. DNA damage response pathways involving Chk1, ATM, and ATR regulate RRM2 expression, suggesting a strategy to improve CPT efficacy.
Area of Science:
- Molecular Biology
- Cancer Research
- Drug Discovery
Background:
- Understanding drug mechanisms of action is crucial for developing effective cancer therapies.
- Identifying molecular targets can guide the rational design of drug combinations.
Purpose of the Study:
- To investigate the role of gene silencing in modulating anti-cancer drug responses.
- To identify molecular targets for enhancing the efficacy of topoisomerase I inhibitors like camptothecin (CPT).
Main Methods:
- Synthetic small interfering RNA (siRNA)-based RNA interference (RNAi) screens were employed.
- Cytotoxicity assays were performed to assess drug responses.
- Western blotting and quantitative real-time PCR were used to measure gene and protein expression.
- Immunofluorescence was utilized to determine protein localization.
Main Results:
- Silencing of RRM1 and RRM2 significantly enhanced CPT-induced cytotoxicity.
- CPT treatment led to increased RRM1 and RRM2 expression and nuclear translocation of RRM2.
- Checkpoint kinase 1 (Chk1) activation, mediated by ATM and ATR, was found to up-regulate RRM2 expression via the E2F1 transcription factor.
- Down-regulation of Chk1, E2F1, ATM, or ATR abrogated CPT-induced RRM2 up-regulation.
Conclusions:
- Ribonucleotide reductase (RRM1/RRM2) plays a critical role in the cellular response to CPT-induced DNA damage.
- The DNA damage response pathway involving ATM, ATR, Chk1, and E2F1 regulates RRM2 expression.
- Targeting RRM2 or its regulatory pathway presents a potential strategy for enhancing the efficacy of topoisomerase I inhibitors.
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