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Dissecting Host-virus Interaction in Lytic Replication of a Model Herpesvirus
Published on: October 7, 2011
Rewiring of the Host Cell Metabolome and Lipidome during Lytic Gammaherpesvirus Infection Is Essential for
Sarah A Clark1, Angie Vazquez2, Kelsey Furiya2
1Northwest University, Department of Biology, Kirkland, Washington, USA.
Abstract:
Oncogenic virus infections are estimated to cause ~15% of all cancers. Two prevalent human oncogenic viruses are members of the gammaherpesvirus family: Epstein-Barr virus (EBV) and Kaposi's sarcoma herpesvirus (KSHV). We use murine herpesvirus 68 (MHV-68), which shares significant homology with KSHV and EBV, as a model system to study gammaherpesvirus lytic replication. Viruses implement distinct metabolic programs to support their life cycle, such as increasing the supply of lipids, amino acids, and nucleotide materials necessary to replicate. Our data define the global changes in the host cell metabolome and lipidome during gammaherpesvirus lytic replication. Our metabolomics analysis found that MHV-68 lytic infection induces glycolysis, glutaminolysis, lipid metabolism, and nucleotide metabolism. We additionally observed an increase in glutamine consumption and glutamine dehydrogenase protein expression. While both glucose and glutamine starvation of host cells decreased viral titers, glutamine starvation led to a greater loss in virion production. Our lipidomics analysis revealed a peak in triacylglycerides early during infection and an increase in free fatty acids and diacylglyceride later in the viral life cycle. Furthermore, we observed an increase in the protein expression of multiple lipogenic enzymes during infection. Interestingly, pharmacological inhibitors of glycolysis or lipogenesis resulted in decreased infectious virus production. Taken together, these results illustrate the global alterations in host cell metabolism during lytic gammaherpesvirus infection, establish essential pathways for viral production, and recommend targeted mechanisms to block viral spread and treat viral induced tumors. IMPORTANCE Viruses are intracellular parasites which lack their own metabolism, so they must hijack host cell metabolic machinery in order to increase the production of energy, proteins, fats, and genetic material necessary to replicate. Using murine herpesvirus 68 (MHV-68) as a model system to understand how similar human gammaherpesviruses cause cancer, we profiled the metabolic changes that occur during lytic MHV-68 infection and replication. We found that MHV-68 infection of host cells increases glucose, glutamine, lipid, and nucleotide metabolic pathways. We also showed inhibition or starvation of glucose, glutamine, or lipid metabolic pathways results in an inhibition of virus production. Ultimately, targeting changes in host cell metabolism due to viral infection can be used to treat gammaherpesvirus-induced cancers and infections in humans.
Insights
Gammaherpesvirus infection hijacks host cell metabolism, increasing glycolysis, glutaminolysis, and lipid synthesis for viral replication. Inhibiting these metabolic pathways significantly reduces virus production, offering targets for antiviral therapies.
Area of Science:
- Virology
- Cellular Metabolism
- Oncology
Background:
- Oncogenic gammaherpesviruses like EBV and KSHV cause significant human cancers.
- Murine herpesvirus 68 (MHV-68) serves as a model for studying gammaherpesvirus replication.
- Viruses reprogram host cell metabolism to meet their replicative demands.
Purpose of the Study:
- To define global metabolomic and lipidomic changes during gammaherpesvirus lytic replication.
- To identify essential host metabolic pathways supporting viral production.
- To explore therapeutic strategies targeting host cell metabolism to inhibit viral spread.
Main Methods:
- Metabolomics and lipidomics analysis of MHV-68 infected cells.
- Assessment of viral titers under nutrient starvation (glucose, glutamine).
- Evaluation of pharmacological inhibitors targeting glycolysis and lipogenesis.
Main Results:
- MHV-68 infection upregulates glycolysis, glutaminolysis, lipid, and nucleotide metabolism.
- Glutamine starvation significantly reduces virion production more than glucose starvation.
- Inhibition of glycolysis or lipogenesis decreases infectious virus production.
- Increased triacylglycerides, free fatty acids, and diacylglycerides observed during infection.
Conclusions:
- Gammaherpesvirus lytic replication globally alters host cell metabolism.
- Specific metabolic pathways, including glycolysis and glutaminolysis, are essential for viral production.
- Targeting host metabolic reprogramming presents a viable strategy for treating gammaherpesvirus infections and associated cancers.
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