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Preparation of Cell-lines for Conditional Knockdown of Gene Expression and Measurement of the Knockdown Effects on E4orf4-Induced Cell Death
Published on: October 21, 2012
p53-dependent cell death/apoptosis is required for a productive adenovirus infection
A R Hall1, B R Dix, S J O'Carroll
1Pathology Department, Dunedin School of Medicine, University of Otago, New Zealand.
Abstract:
The p53 tumor suppressor protein binds to both cellular and viral proteins, which influence its biological activity. One such protein is the large E1b tumor antigen (E1b58kDa) from adenoviruses (Ads), which abrogates the ability of p53 to transactivate various promoters. This inactivation of p53 function is believed to be the mechanism by which E1b58kDa contributes to the cell transformation process. Although the p53-E1b58kDa complex occurs during infection and is conserved among different serotypes, there are limited data demonstrating that it has a role in virus replication. However, loss of p53 expression occurs after adenovirus infection of human cells and an E1b58kDa deletion mutant (Onyx-015, also called dl 1520) selectively replicates in p53-defective cells. These (and other) data indicate a plausible hypothesis is that loss of p53 function may be conducive to efficient adenovirus replication. However, wild-type (wt) Ad5 grows more efficiently in cells expressing a wt p53 protein. These studies indicate that the hypothesis may be an oversimplification. Here, we show that cells expressing wt p53, as well as p53-defective cells, allow adenovirus replication, but only cells expressing wt p53 show evidence of virus-induced cytopathic effect. This correlates with the ability of adenovirus to induce cell death. Our data indicate that p53 plays a necessary part in mediating cellular destruction to allow a productive adenovirus infection. In contrast, p53-deficient cells are less sensitive to the cytolytic effects of adenovirus and as such raise questions about the use of E1b58kDa-deficient adenoviruses in tumor therapy.
Insights
Adenovirus replication occurs in cells with or without p53, but p53 is essential for virus-induced cell death, enabling productive adenovirus infection. This challenges the use of E1b58kDa-deficient adenoviruses in cancer therapy.
Area of Science:
- Molecular Biology
- Virology
- Oncology
Background:
- The p53 tumor suppressor protein regulates cellular responses to DNA damage and stress.
- Adenoviruses encode proteins, like E1b58kDa, that can interfere with p53 function.
- E1b58kDa's inactivation of p53 is implicated in adenovirus-induced cell transformation.
Purpose of the Study:
- To investigate the role of p53 in adenovirus replication and cytopathic effects.
- To clarify the complex relationship between p53 status and adenovirus infection outcomes.
- To evaluate the implications for using E1b58kDa-deficient adenoviruses in cancer treatment.
Main Methods:
- Comparative analysis of adenovirus replication in cells with wild-type p53 versus p53-defective cells.
- Assessment of virus-induced cytopathic effects and cell death.
- Evaluation of adenovirus growth in different cellular contexts.
Main Results:
- Adenovirus replicates in both p53-expressing and p53-deficient cells.
- Cells expressing wild-type p53 exhibit significant virus-induced cytopathic effects and cell death.
- p53-deficient cells are less sensitive to adenovirus-induced lysis, impacting productive infection.
Conclusions:
- p53 plays a critical role in mediating adenovirus-induced cell death, which is necessary for productive infection.
- The hypothesis that p53 loss is conducive to adenovirus replication may be an oversimplification.
- The findings raise concerns regarding the therapeutic application of E1b58kDa-deficient adenoviruses due to altered p53-mediated cell lysis.
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