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Inhibition of DNA-Sensing Pathway by Marek's Disease Virus VP23 Protein through Suppression of Interferon Regulatory Factor 7 Activation
Author(s) -
Li Gao,
Kai Li,
Yu Zhang,
Yongzhen Liu,
Changjun Liu,
Yanping Zhang,
Yulong Gao,
Xiaole Qi,
Hongyu Cui,
Yongqiang Wang,
Xiaomei Wang
Publication year - 2018
Publication title -
journal of virology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.617
H-Index - 292
eISSN - 1070-6321
pISSN - 0022-538X
DOI - 10.1128/jvi.01934-18
Subject(s) - irf7 , biology , irf3 , interferon regulatory factors , interferon , marek's disease , innate immune system , viral replication , virology , gene knockdown , virus , host factor , antiviral protein , immune system , gene , rna , immunology , genetics
Despite widespread vaccination, Marek’s disease (MD) continues to pose major challenges for the poultry industry worldwide. MDV causes immunosuppression and deadly lymphomas in chickens, suggesting that this virus has developed a successful immune evasion strategy. However, little is known regarding the initiation and modulation of the host innate immune response during MDV infection. This study demonstrates that the cGAS-STING DNA-sensing pathway is critical for the induction of the IFN-β response against MDV infection in chicken fibroblasts and macrophages. An MDV protein, VP23, was found to efficiently inhibit the cGAS-STING pathway. VP23 selectively inhibits IRF7 but not NF-κB activation. VP23 interacts with IRF7 and blocks its binding to TBK1, thereby suppressing IRF7 activation and resulting in inhibition of the DNA-sensing pathway. These findings expand our knowledge of DNA sensing in chickens and reveal a mechanism through which MDV antagonizes the host IFN response.

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