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Visualizing Single-Stranded DNA Foci in the G1 Phase of the Cell Cycle
Published on: December 22, 2023
Human parvovirus B19 DNA replication induces a DNA damage response that is dispensable for cell cycle arrest at phase
Sai Lou1, Yong Luo, Fang Cheng
1Department of Infectious Diseases, First Affiliated Hospital, School of Medicine, Xi'an Jiaotong University, Xi'an, China.
Abstract:
Human parvovirus B19 (B19V) infection is highly restricted to human erythroid progenitor cells, in which it induces a DNA damage response (DDR). The DDR signaling is mainly mediated by the ATR (ataxia telangiectasia-mutated and Rad3-related) pathway, which promotes replication of the viral genome; however, the exact mechanisms employed by B19V to take advantage of the DDR for virus replication remain unclear. In this study, we focused on the initiators of the DDR and the role of the DDR in cell cycle arrest during B19V infection. We examined the role of individual viral proteins, which were delivered by lentiviruses, in triggering a DDR in ex vivo-expanded primary human erythroid progenitor cells and the role of DNA replication of the B19V double-stranded DNA (dsDNA) genome in a human megakaryoblastoid cell line, UT7/Epo-S1 (S1). All the cells were cultured under hypoxic conditions. The results showed that none of the viral proteins induced phosphorylation of H2AX or replication protein A32 (RPA32), both hallmarks of a DDR. However, replication of the B19V dsDNA genome was capable of inducing the DDR. Moreover, the DDR per se did not arrest the cell cycle at the G(2)/M phase in cells with replicating B19V dsDNA genomes. Instead, the B19V nonstructural 1 (NS1) protein was the key factor in disrupting the cell cycle via a putative transactivation domain operating through a p53-independent pathway. Taken together, the results suggest that the replication of the B19V genome is largely responsible for triggering a DDR, which does not perturb cell cycle progression at G(2)/M significantly, during B19V infection.
Insights
Human parvovirus B19 genome replication triggers a DNA damage response (DDR) without significantly halting cell cycle progression. The viral NS1 protein, however, disrupts the cell cycle independently of p53.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Human parvovirus B19 (B19V) infects erythroid progenitor cells, inducing a DNA damage response (DDR) primarily via the ATR pathway.
- The precise mechanisms by which B19V utilizes the DDR to enhance viral genome replication are not fully understood.
Purpose of the Study:
- To investigate the initiators of the DDR during B19V infection.
- To elucidate the role of the DDR in cell cycle arrest in response to B19V.
Main Methods:
- Assessed DDR induction by individual B19V proteins using lentiviral delivery in primary human erythroid progenitor cells.
- Studied B19V double-stranded DNA (dsDNA) genome replication-induced DDR in UT7/Epo-S1 cells under hypoxic conditions.
- Examined cell cycle progression and the role of the NS1 protein.
Main Results:
- No single B19V protein induced DDR hallmarks like H2AX or RPA32 phosphorylation.
- Replication of the B19V dsDNA genome was sufficient to trigger a DDR.
- The DDR itself did not cause G2/M cell cycle arrest in infected cells.
- B19V NS1 protein disrupted the cell cycle via a p53-independent pathway.
Conclusions:
- B19V genome replication is the primary trigger for the DDR during infection.
- The DDR does not significantly impede G2/M cell cycle progression in B19V-infected cells.
- B19V NS1 protein is crucial for cell cycle disruption during infection.
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