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Stimulation of Cytoplasmic DNA Sensing Pathways In Vitro and In Vivo
Published on: September 18, 2014
SADS-CoV nucleocapsid protein antagonizes DAD1-mediated STING activation to prevent cytosolic DNA sensing
Yuying Li1, Xinyu Zhang2, Wei Chen3
1MOA Key Laboratory of Animal Virology, Zhejiang University Center for Veterinary Sciences, Hangzhou 310058, China; Changchun Veterinary Research Institute, Chinese Academy of Agricultural Sciences, Changchun 130122, China; Wenzhou Key Laboratory for Virology and Immunology, Institute of Virology, Wenzhou University, Wenzhou 325035, China.
Abstract:
The STING pathway is pivotal in defense against RNA viruses; however, its involvement in swine acute diarrhea syndrome coronavirus (SADS-CoV) infection remains unclear. This study reveals a dual mechanism where in SADS-CoV triggers STING activation via nuclear envelope rupture but subsequently evades immunity through its nucleocapsid (N) protein. Mechanistically, this process involves chromatin leakage that activates the cGAS-STING pathway, triggering interferon responses. The endoplasmic reticulum-resident protein defender against cell death 1 (DAD1) plays a key role in promoting STING phosphorylation and trafficking to the Golgi apparatus. The SADS-CoV N protein binds to STING to block its activation and translocation, disrupting DAD1-mediated antiviral signaling. Notably, the E368A mutation in the N protein weakens STING binding and impairs immune suppression. These findings reveal that the SADS-CoV N protein evades host innate immunity by disrupting DAD1-mediated activation, pointing to potential targets for antiviral strategies.
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