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Updated: May 2, 2026

Study of the DNA Damage Checkpoint using Xenopus Egg Extracts
Published on: November 5, 2012
STAT3 interrupts ATR-Chk1 signaling to allow oncovirus-mediated cell proliferation
Siva Koganti1, Joyce Hui-Yuen, Shane McAllister
1Pediatric Infectious Diseases, Department of Pediatrics and Stony Brook Children's Hospital, Stony Brook University School of Medicine, Stony Brook, NY 11794.
Abstract:
DNA damage response (DDR) is a signaling network that senses DNA damage and activates response pathways to coordinate cell-cycle progression and DNA repair. Thus, DDR is critical for maintenance of genome stability, and presents a powerful defense against tumorigenesis. Therefore, to drive cell-proliferation and transformation, viral and cellular oncogenes need to circumvent DDR-induced cell-cycle checkpoints. Unlike in hereditary cancers, mechanisms that attenuate DDR and disrupt cell-cycle checkpoints in sporadic cancers are not well understood. Using Epstein-Barr virus (EBV) as a source of oncogenes, we have previously shown that EBV-driven cell proliferation requires the cellular transcription factor STAT3. EBV infection is rapidly followed by activation and increased expression of STAT3, which mediates relaxation of the intra-S phase cell-cycle checkpoint; this facilitates viral oncogene-driven cell proliferation. We now show that replication stress-associated DNA damage, which results from EBV infection, is detected by DDR. However, signaling downstream of ATR is impaired by STAT3, leading to relaxation of the intra-S phase checkpoint. We find that STAT3 interrupts ATR-to-Chk1 signaling by promoting loss of Claspin, a protein that assists ATR to phosphorylate Chk1. This loss of Claspin which ultimately facilitates cell proliferation is mediated by caspase 7, a protein that typically promotes cell death. Our findings demonstrate how STAT3, which is constitutively active in many human cancers, suppresses DDR, fundamental to tumorigenesis. This newly recognized role for STAT3 in attenuation of DDR, discovered in the context of EBV infection, is of broad interest as the biology of cell proliferation is central to both health and disease.
Insights
STAT3 activation by Epstein-Barr virus (EBV) impairs DNA damage response (DDR) signaling. This allows viral oncogenes to promote cell proliferation by relaxing cell-cycle checkpoints, a mechanism relevant to cancer.
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- DNA damage response (DDR) is crucial for genome stability and preventing cancer.
- Viral and cellular oncogenes must bypass DDR checkpoints for cell proliferation.
- Mechanisms of DDR attenuation in sporadic cancers are poorly understood.
Purpose of the Study:
- To investigate how Epstein-Barr virus (EBV) oncogenes circumvent DDR-induced cell-cycle checkpoints.
- To elucidate the role of STAT3 in attenuating DDR during EBV infection.
Main Methods:
- Analysis of DDR signaling pathways in EBV-infected cells.
- Investigating the interaction between STAT3, ATR, Chk1, and Claspin.
- Assessing the role of caspase 7 in Claspin degradation.
Main Results:
- EBV infection activates STAT3, leading to relaxation of the intra-S phase cell-cycle checkpoint.
- STAT3 impairs ATR-to-Chk1 signaling by promoting Claspin loss.
- Caspase 7 mediates Claspin degradation, facilitating cell proliferation.
Conclusions:
- STAT3 suppresses DDR by disrupting ATR-Chk1 signaling via Claspin degradation.
- This mechanism, identified in EBV infection, explains how oncogenes promote proliferation and is relevant to human cancers with constitutive STAT3 activity.
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