Manipulation of apoptosis and necroptosis signaling by herpesviruses
Hongyan Guo1, William J Kaiser, Edward S Mocarski
1Department of Microbiology and Immunology, Emory Vaccine Center, Emory University School of Medicine, Atlanta, GA, 30322, USA.
Abstract:
Like apoptosis, necroptosis is an innate immune mechanism that eliminates pathogen-infected cells. Receptor-interacting protein kinase (RIP)3 (also called RIPK3) mediates necrotic death by phosphorylating an executioner protein, MLKL, leading to plasma membrane leakage. The pathway is triggered against viruses that block caspase 8. In murine CMV, the viral inhibitor of caspase 8 activation prevents extrinsic apoptosis but also has the potential to unleash necroptosis. This virus encodes the viral inhibitor of RIP activation to prevent RIP homotypic interaction motif (RHIM)-dependent signal transduction and necroptosis. Recent investigations reveal a similar mechanism at play in the human alpha-herpesviruses, herpes simplex virus (HSV)1 and HSV2, where RHIM competitor function and caspase 8 suppression are carried out by the virus-encoded large subunit of ribonucleotide reductase (R1). In human cells, R1 inhibition of caspase 8 prevents TNF-induced apoptosis, but sensitizes to TNF-induced necroptosis. The RHIM and caspase 8 interaction domains of R1 collaborate to prevent RIP3-dependent steps and enable both herpesviruses to deflect host cell death machinery that would cut short infection. In mouse cells, HSV1 infection by itself triggers necroptosis by driving RIP3 protein kinase activity. HSV1 R1 contributes to the activation of RIP3 adaptor function in mice, a popular host animal for experimental infection. Based on these studies, infection of RIP3-kinase inactive mice should be explored in models of pathogenesis and latency. The necrotic death pathway that is suppressed during infection in the natural host becomes a cross-species barrier to infection in a non-natural host.
Insights
Necroptosis, a cell death pathway, is blocked by herpesviruses using viral proteins to evade immune detection. This mechanism helps viruses infect hosts but can be a barrier in non-natural hosts.
Area of Science:
- Immunology
- Virology
- Cell Biology
Background:
- Necroptosis is an innate immune mechanism eliminating pathogen-infected cells.
- Receptor-interacting protein kinase 3 (RIPK3) mediates necroptosis by phosphorylating MLKL, causing cell lysis.
- Viruses that inhibit caspase 8 can trigger necroptosis, but some encode proteins to suppress this pathway.
Purpose of the Study:
- To investigate how herpes simplex viruses (HSV) 1 and 2 evade host cell death pathways.
- To understand the role of the viral ribonucleotide reductase (R1) protein in suppressing necroptosis.
- To explore the implications of necroptosis suppression for viral pathogenesis and host specificity.
Main Methods:
- Analysis of viral protein function in human and mouse cell lines.
- Investigating the interaction between viral proteins and host necroptosis machinery (RIPK3, MLKL).
- Utilizing genetic manipulation of viral and host factors.
Main Results:
- HSV1 and HSV2 encode R1 protein, which inhibits caspase 8 and necroptosis via RIP homotypic interaction motif (RHIM) competition.
- R1's dual function prevents apoptosis and necroptosis, facilitating viral infection.
- HSV1 infection activates RIPK3 in mouse cells, suggesting a role for R1 in this activation.
Conclusions:
- Herpesviruses utilize R1 to suppress host cell death, enabling viral replication.
- The interplay between viral proteins and necroptosis pathways influences host-pathogen interactions.
- Targeting RIPK3-inactive mice may offer insights into viral pathogenesis and latency.
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