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Published on: January 26, 2019
Rotavirus structural proteins and dsRNA are required for the human primary plasmacytoid dendritic cell IFNalpha
Emily M Deal1, Maria C Jaimes, Sue E Crawford
1Department of Microbiology & Immunology, Stanford University School of Medicine, Stanford, California, United States of America.
Insights
This study shows that rotavirus can induce type I interferon (IFN) production in human plasmacytoid dendritic cells (pDCs), a key part of the innate immune system. However, rotavirus replication within pDCs impairs this crucial IFN response.
Area of Science:
- Virology
- Immunology
- Infectious Diseases
Background:
- Rotaviruses cause severe diarrhea in children globally.
- Innate immune responses, particularly type I interferons (IFNs), are crucial for controlling viral infections.
- Rotaviruses are known to antagonize IFN production, but mechanisms in primary human immune cells are unclear.
Purpose of the Study:
- To investigate the innate immune response of primary human plasmacytoid dendritic cells (pDCs) to rotavirus (RRV).
- To characterize the induction of type I IFN (IFN-alpha) by RRV in pDCs.
- To understand the role of viral replication and specific viral components in pDC activation and IFN production.
Main Methods:
- Purified primary human peripheral pDCs were stimulated with live or inactivated rhesus rotavirus (RRV).
- Flow cytometry and Luminex assays were used to analyze pDC activation, maturation, and IFN-alpha production.
- Investigated the requirement for viral dsRNA, surface proteins, viral replication, and trypsin cleavage of VP4 for pDC response.
Main Results:
- RRV induced IFN-alpha production in a subset of pDCs where it did not replicate.
- RRV replicated in a minor subset of pDCs, and IFN-alpha production was diminished in these permissive cells.
- pDC activation and maturation occurred independently of viral replication and were enhanced in RRV-permissive cells.
- IFN-alpha production required viral dsRNA and surface proteins, but not viral replication or trypsin cleavage of VP4.
- Demonstrated trypsin-independent rotavirus infection of primary human cells.
Conclusions:
- Primary human pDCs can be infected by rotavirus, with a subset being permissive.
- Rotavirus infection impairs IFN-alpha production in permissive pDCs, highlighting a viral immune evasion strategy.
- This study provides the first evidence of IFN-alpha induction in primary human pDCs by a dsRNA virus and reveals a novel dsRNA-dependent IFN-alpha induction pathway.
- Rotavirus infection of pDCs offers a model for studying innate immunity and viral interactions with dendritic cells.
Abstract:
Rotaviruses are the leading cause of severe dehydrating diarrhea in children worldwide. Rotavirus-induced immune responses, especially the T and B cell responses, have been extensively characterized; however, little is known about innate immune mechanisms involved in the control of rotavirus infection. Although increased levels of systemic type I interferon (IFNalpha and beta) correlate with accelerated resolution of rotavirus disease, multiple rotavirus strains, including rhesus rotavirus (RRV), have been demonstrated to antagonize type I IFN production in a variety of epithelial and fibroblast cell types through several mechanisms, including degradation of multiple interferon regulatory factors by a viral nonstructural protein. This report demonstrates that stimulation of highly purified primary human peripheral plasmacytoid dendritic cells (pDCs) with either live or inactivated RRV induces substantial IFNalpha production by a subset of pDCs in which RRV does not replicate. Characterization of pDC responses to viral stimulus by flow cytometry and Luminex revealed that RRV replicates in a small subset of human primary pDCs and, in this RRV-permissive small subset, IFNalpha production is diminished. pDC activation and maturation were observed independently of viral replication and were enhanced in cells in which virus replicates. Production of IFNalpha by pDCs following RRV exposure required viral dsRNA and surface proteins, but neither viral replication nor activation by trypsin cleavage of VP4. These results demonstrate that a minor subset of purified primary human peripheral pDCs are permissive to RRV infection, and that pDCs retain functionality following RRV stimulus. Additionally, this study demonstrates trypsin-independent infection of primary peripheral cells by rotavirus, which may allow for the establishment of extraintestinal viremia and antigenemia. Importantly, these data provide the first evidence of IFNalpha induction in primary human pDCs by a dsRNA virus, while simultaneously demonstrating impaired IFNalpha production in primary human cells in which RRV replicates. Rotavirus infection of primary human pDCs provides a powerful experimental system for the study of mechanisms underlying pDC-mediated innate immunity to viral infection and reveals a potentially novel dsRNA-dependent pathway of IFNalpha induction.
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