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Updated: Jun 1, 2026

Electrophoretic Analysis of Replication Through Structure-Prone DNA Repeats Within the SV40-Based Human Episome
Published on: September 13, 2024
An E2F1-mediated DNA damage response contributes to the replication of human cytomegalovirus
Xiaofei E1, Mary T Pickering, Michelle Debatis
1Department of Microbiology and Physiological Systems, University of Massachusetts Medical School, Worcester, Massachusetts, United States of America.
Abstract:
DNA damage resulting from intrinsic or extrinsic sources activates DNA damage responses (DDRs) centered on protein kinase signaling cascades. The usual consequences of inducing DDRs include the activation of cell cycle checkpoints together with repair of the damaged DNA or induction of apoptosis. Many DNA viruses elicit host DDRs during infection and some viruses require the DDR for efficient replication. However, the mechanism by which DDRs are activated by viral infection is poorly understood. Human cytomegalovirus (HCMV) infection induces a DDR centered on the activation of ataxia telangiectasia mutated (ATM) protein kinase. Here we show that HCMV replication is compromised in cells with inactivated or depleted ATM and that ATM is essential for the host DDR early during infection. Likewise, a downstream target of ATM phosphorylation, H2AX, also contributes to viral replication. The ATM-dependent DDR is detected as discrete, nuclear γH2AX foci early in infection and can be activated by IE proteins. By 24 hpi, γH2AX is observed primarily in HCMV DNA replication compartments. We identified a role for the E2F1 transcription factor in mediating this DDR and viral replication. E2F1, but not E2F2 or E2F3, promotes the accumulation of γH2AX during HCMV infection or IE protein expression. Moreover, E2F1 expression, but not the expression of E2F2 or E2F3, is required for efficient HCMV replication. These results reveal a novel role for E2F1 in mediating an ATM-dependent DDR that contributes to viral replication. Given that E2F activity is often deregulated by infection with DNA viruses, these observations raise the possibility that an E2F1-mediated mechanism of DDR activation may be conserved among DNA viruses.
Insights
Human cytomegalovirus (HCMV) infection activates DNA damage responses (DDRs) via ATM kinase, essential for viral replication. E2F1 transcription factor mediates this DDR, highlighting a conserved viral mechanism.
Area of Science:
- Virology
- Molecular Biology
- Cellular Biology
Background:
- DNA damage responses (DDRs) are crucial cellular processes involving protein kinase signaling.
- Many DNA viruses interact with host DDRs, yet the activation mechanisms remain unclear.
- Human cytomegalovirus (HCMV) infection is known to induce DDRs.
Purpose of the Study:
- To elucidate the mechanism of DDR activation by HCMV infection.
- To investigate the role of ataxia telangiectasia mutated (ATM) kinase and E2F1 transcription factor in HCMV-induced DDR and replication.
Main Methods:
- HCMV infection in cell cultures with manipulated ATM and E2F1 levels.
- Analysis of DDR markers like γH2AX foci.
- Assessment of viral replication efficiency.
Main Results:
- HCMV replication requires ATM kinase and its downstream target H2AX.
- ATM-dependent DDR, marked by γH2AX foci, is activated early in infection by viral IE proteins.
- E2F1, but not E2F2 or E2F3, is essential for γH2AX accumulation and efficient HCMV replication.
Conclusions:
- HCMV infection activates an ATM-dependent DDR mediated by the E2F1 transcription factor.
- E2F1 plays a critical role in promoting viral replication through DDR.
- This E2F1-mediated DDR activation may be a conserved mechanism among DNA viruses.
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