Porcine Rotavirus NSP4 Inhibits Type I Interferon Production via NRBF2-Mediated Autophagic Degradation of MDA-5
- Transbound Emerg Dis. 2026;2026(1):e5789277. doi: 10.1155/tbed/5789277.
- 1. College of Veterinary Medicine, Jilin Agricultural University, Changchun, 130118, China, jlau.edu.cn.
- 2. Engineering Research Center of Microecological Vaccines (Drugs) for Major Animal, Jilin Agricultural University, Changchun, 130118, China, jlau.edu.cn.
- 3. Diseases, Ministry of Education, Jilin Agricultural University, Changchun, 130118, China, jlau.edu.cn.
- 4. The College of Veterinary Medicine, Southwest University, Chongqing, 402460, China, swu.edu.cn.
The type I interferon (IFN-I) signaling pathway plays a pivotal role in orchestrating Antiviral innate immune defenses, particularly during the clearance of invading pathogens. Rotaviruses have evolved a repertoire of Viral Proteins to counteract host immune surveillance. While certain functions of rotavirus nonstructural proteins in antagonizing IFN-I signaling have been characterized, the precise molecular mechanism by which nonstructural protein 4 (NSP4) impairs host immunity remains elusive. Here, we demonstrated that the porcine rotavirus (PoRV) nonstructural protein NSP4 potently suppresses the transcriptional activation of interferon-stimulated genes (ISGs), IFN-β promoters, and interferon-sensitive response elements (ISREs) while abrogating the phosphorylation of interferon regulatory factor 3 (IRF3). Mechanistically, NSP4 promotes the degradation of melanoma differentiation-associated gene 5 (MDA-5) via nuclear receptor binding factor 2 (NRBF2)-dependent Autophagy, thereby subverting IFN-I production. The validity of this mechanism in primary epithelial cells was also verified by constructing an intestinal Organoid model in piglets. Collectively, our findings elucidate a previously unrecognized immune evasion mechanism by which NSP4 antagonizes the IFN-I-mediated Antiviral response, providing novel molecular insights for developing therapeutic strategies against rotavirus infections.
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Research Areas: Cancer
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