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Updated: Jul 16, 2026

Vaccinia Virus Infection & Temporal Analysis of Virus Gene Expression: Part 2
Published on: April 10, 2009
Modulation of gene expression in a human cell line caused by poliovirus, vaccinia virus and interferon
Bjørn Grinde1, Marc Gayorfar, Gunnar Hoddevik
1Division of Infectious Disease Control, Norwegian Institute of Public Health, PO Box 4404 Nydalen, 0403 Oslo, Norway. bjgr@fhi.no
Background:
The project was initiated to describe the response of a human embryonic fibroblast cell line to the replication of two different viruses, and, more specifically, to look for candidate genes involved in viral defense. For this purpose, the cells were synchronously infected with poliovirus in the absence or presence of interferon-alpha, or with vaccinia virus, a virus that is not inhibited by interferon. By comparing the changes in transcriptosome due to these different challenges, it should be possible to suggest genes that might be involved in defense.
Results:
The viral titers were sufficient to yield productive infection in a majority of the cells. The cells were harvested in triplicate at various time-points, and the transcriptosome compared with mock infected cells using oligo-based, global 35 k microarrays. While there was very limited similarities in the response to the different viruses, a large proportion of the genes up-regulated by interferon-alpha were also up-regulated by poliovirus. Interferon-alpha inhibited poliovirus replication, but there were no signs of any interferons being induced by poliovirus. The observations suggest that the cells do launch an antiviral response to poliovirus in the absence of interferon. Analyses of the data led to a list of candidate antiviral genes. Functional information was limited, or absent, for most of the candidate genes.
Conclusion:
The data are relevant for our understanding of how the cells respond to poliovirus and vaccinia virus infection. More annotations, and more microarray studies with related viruses, are required in order to narrow the list of putative defence-related genes.
Insights
Human embryonic fibroblast cells mount an antiviral response to poliovirus, even without interferon. Researchers identified candidate antiviral genes by comparing cellular responses to poliovirus and vaccinia virus infections using microarrays.
Area of Science:
- Virology
- Molecular Biology
- Immunology
Background:
- Investigating cellular defense mechanisms against viral infections.
- Utilizing human embryonic fibroblast cell lines for infection studies.
- Examining the role of interferon-alpha in antiviral responses.
Purpose of the Study:
- To describe the transcriptomic response of human embryonic fibroblast cells to poliovirus and vaccinia virus.
- To identify candidate genes involved in cellular defense against viral replication.
- To compare viral defense pathways influenced by interferon-alpha.
Main Methods:
- Synchronous infection of fibroblast cells with poliovirus (with/without interferon-alpha) or vaccinia virus.
- Global transcriptomic analysis using 35k oligo-based microarrays.
- Comparison of gene expression profiles between infected and mock-infected cells.
Main Results:
- Polio and vaccinia viruses induced distinct cellular transcriptomic changes.
- Interferon-alpha-upregulated genes were also upregulated by poliovirus.
- Polio virus replication was inhibited by interferon-alpha, but did not induce interferon.
- Candidate antiviral genes were identified, though functional data was limited.
Conclusions:
- Human embryonic fibroblast cells exhibit an interferon-independent antiviral response to poliovirus.
- The study provides insights into cellular responses to poliovirus and vaccinia virus.
- Further research with related viruses and gene annotation is needed to refine the list of defense genes.
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