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Dissecting Innate Immune Signaling in Viral Evasion of Cytokine Production
Published on: March 2, 2014
Enterovirus D68 Protease 2Apro Targets TRAF3 To Subvert Host Innate Immune Responses
Jun Kang1,2, Zheng Pang1,3, Zhenwei Zhou1
1School of Life Sciences, Tianjin University, Tianjin, China.
Abstract:
Human enterovirus D68 (EV-D68) has received considerable attention recently as a global reemergent pathogen because it causes severe respiratory tract infections and acute flaccid myelitis (AFM). The nonstructural protein 2A protease (2Apro) of EVs, which functions in the cleavage of host proteins, comprises a pivotal part of the viral immune evasion process. However, the pathogenic mechanism of EV-D68 is not fully understood. In this study, we found that EV-D68 inhibited antiviral type I interferon responses by cleaving tumor necrosis factor receptor-associated factor 3 (TRAF3), which is the key factor for type I interferon production. EV-D68 inhibited Sendai virus (SEV)-induced interferon regulatory factor 3 (IRF3) activation and beta interferon (IFN-β) expression in HeLa and HEK293T cells. Furthermore, we demonstrated that EV-D68 and 2Apro were able to cleave the C-terminal region of TRAF3 in HeLa and HEK293T cells, respectively. A cysteine-to-alanine substitution at amino acid 107 (C107A) in the 2Apro protease resulted in the loss of cleavage activity to TRAF3, and mutation of glycine at amino acid 462 to alanine (G462A) in TRAF3 conferred resistance to 2Apro These results suggest that control of TRAF3 by 2Apro may be a mechanism EV-D68 utilizes to subvert host innate immune responses.IMPORTANCE Human enterovirus 68 (EV-D68) has received considerable attention recently as a global reemergent pathogen because it causes severe respiratory tract infections and acute flaccid myelitis. The nonstructural protein 2A protease (2Apro) of EV, which functions in cleavage of host proteins, comprises an essential part of the viral immune evasion process. However, the pathogenic mechanism of EV-D68 is not fully understood. Here, we show for the first time that EV-D68 inhibited antiviral type I interferon responses by cleaving tumor necrosis factor receptor-associated factor 3 (TRAF3). Furthermore, we identified the key cleavage site in TRAF3. Our study may suggest a new mechanism by which the 2Apro of EV facilitates subversion of host innate immune responses. These findings increase our understanding of EV-D68 infection and may help identify new antiviral targets against EV-D68.
Insights
Human enterovirus D68 (EV-D68) evades immune responses by cleaving TRAF3, a key protein for interferon production. This viral mechanism, mediated by the 2A protease, hinders the body's ability to fight infection.
Area of Science:
- Virology
- Immunology
- Molecular Biology
Background:
- Human enterovirus D68 (EV-D68) is a reemergent pathogen causing severe respiratory illness and acute flaccid myelitis (AFM).
- The viral 2A protease (2Apro) plays a role in immune evasion by cleaving host proteins, but EV-D68's pathogenic mechanisms remain unclear.
Purpose of the Study:
- To investigate the mechanism by which EV-D68 evades the host's innate immune response.
- To identify the specific viral protein and host target involved in this immune evasion process.
Main Methods:
- Cell-based assays using HeLa and HEK293T cells.
- Analysis of viral protein interactions and cleavage activity.
- Site-directed mutagenesis to assess protein function (EV-D68 2Apro C107A and TRAF3 G462A).
Main Results:
- EV-D68 inhibited Sendai virus-induced type I interferon responses, including IRF3 activation and IFN-β expression.
- EV-D68 and its 2Apro directly cleaved tumor necrosis factor receptor-associated factor 3 (TRAF3).
- Mutations in 2Apro (C107A) abolished TRAF3 cleavage, while mutations in TRAF3 (G462A) conferred resistance to cleavage.
Conclusions:
- EV-D68 subverts host innate immunity by using its 2Apro to cleave TRAF3, thereby inhibiting type I interferon production.
- This study elucidates a novel mechanism of viral immune evasion by EV-D68.
- Understanding this interaction may lead to new antiviral therapeutic strategies against EV-D68.
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