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Dissecting Innate Immune Signaling in Viral Evasion of Cytokine Production
Published on: March 2, 2014
Antiviral regulation in porcine monocytic cells at different activation states
Yongming Sang1, Raymond R R Rowland2, Frank Blecha1
1Department of Anatomy and Physiology, College of Veterinary Medicine, Kansas State University, Manhattan, Kansas, USA ysang@vet.k-state.edu blecha@vet.k-state.edu.
Unlabelled:
Monocytic cells, including macrophages and dendritic cells, exist in different activation states that are critical to the regulation of antimicrobial immunity. Many pandemic viruses are monocytotropic, including porcine reproductive and respiratory syndrome virus (PRRSV), which directly infects subsets of monocytic cells and interferes with antiviral responses. To study antiviral responses in PRRSV-infected monocytic cells, we characterized inflammatory cytokine responses and genome-wide profiled signature genes to investigate response pathways in uninfected and PRRSV-infected monocytic cells at different activation states. Our findings showed suppressed interferon (IFN) production in macrophages in non-antiviral states and an arrest of lipid metabolic pathways in macrophages at antiviral states. Importantly, porcine monocytic cells at different activation states were susceptible to PRRSV and responded differently to viral infection. Based on Gene Ontology (GO) analysis, two approaches were used to potentiate antiviral activity: (i) pharmaceutical modulation of cellular lipid metabolism and (ii) in situ PRRSV replication-competent expression of interferon alpha (IFN-α). Both approaches significantly suppressed exogenous viral infection in monocytic cells. In particular, the engineered IFN-expressing PRRSV strain eliminated exogenous virus infection and sustained cell viability at 4 days postinfection in macrophages. These findings suggest an intricate interaction of viral infection with the activation status of porcine monocytic cells. An understanding and integration of antiviral infection with activation status of monocytic cells may provide a means of potentiating antiviral immunity.
Importance:
Activation statuses of monocytic cells, including monocytes, macrophages (Mϕs), and dendritic cells (DCs), are critically important for antiviral immunity. Unfortunately, the activation status of porcine monocytic cells or how cell activation status functionally interacts with antiviral immunity remains largely unknown. This is a significant omission because many economically important porcine viruses are monocytotropic, including our focus, PRRSV, which alone causes nearly $800 million economic loss annually in the U.S. swine industries. PRRSV is ideal for deciphering how monocytic cell activation statuses interact with antiviral immunity, because it directly infects subsets of monocytic cells and subverts overall immune responses. In this study, we systematically investigate the activation status of porcine monocytic cells to determine the intricate interaction of viral infection with activation statuses and functionally regulate antiviral immunity within the framework of the activation paradigm. Our findings may provide a means of potentiating antiviral immunity and leading to novel vaccines for PRRS prevention.
Insights
Porcine monocytic cells respond differently to PRRSV based on their activation state, impacting antiviral immunity. Modulating lipid metabolism or using engineered interferon-expressing viruses can enhance antiviral defenses against PRRSV.
Area of Science:
- Immunology
- Virology
- Cell Biology
Background:
- Monocytic cell activation states are crucial for antimicrobial immunity.
- Porcine reproductive and respiratory syndrome virus (PRRSV) infects monocytic cells and disrupts antiviral responses.
- Understanding PRRSV's interaction with porcine monocytic cell activation is vital for swine health and preventing economic losses.
Purpose of the Study:
- To investigate the intricate interaction between PRRSV infection and the activation status of porcine monocytic cells.
- To characterize inflammatory cytokine responses and genome-wide gene expression in PRRSV-infected monocytic cells at different activation states.
- To identify strategies for potentiating antiviral immunity against PRRSV.
Main Methods:
- Systematic investigation of porcine monocytic cell activation statuses.
- Characterization of inflammatory cytokine profiles and genome-wide gene expression.
- Gene Ontology (GO) analysis to identify response pathways and therapeutic targets.
- Experimental approaches including pharmaceutical modulation of lipid metabolism and engineered interferon-expressing PRRSV.
Main Results:
- Suppressed interferon production in non-antiviral state macrophages and arrested lipid metabolism in antiviral state macrophages.
- Differential susceptibility and response of porcine monocytic cells to PRRSV based on activation status.
- Both lipid metabolism modulation and engineered IFN-α expressing PRRSV significantly suppressed viral infection.
- Engineered PRRSV eliminated exogenous virus and improved macrophage viability.
Conclusions:
- Porcine monocytic cell activation status significantly influences antiviral immunity against PRRSV.
- Targeting cellular lipid metabolism and utilizing engineered IFN-expressing viruses are promising strategies to enhance antiviral immunity.
- Further understanding of these interactions can lead to novel vaccines and improved PRRS prevention.
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