Key Laboratory of Zoonosis Prevention and Control of Guangdong Province, College of Veterinary Medicine, South China Agricultural University, Guangzhou, China.
African Swine Fever Regional Laboratory of China (Guangzhou), Guangzhou, China.
PLoS Pathog. 2024 Oct 15;20(10):e1012613. doi: 10.1371/journal.ppat.1012613. eCollection 2024 Oct.
African swine fever virus (ASFV) is a nuclear cytoplasmic large DNA virus (NCLDV) that causes devastating hemorrhagic diseases in domestic pigs and wild boars, seriously threatening the development of the global pig industry. IFN-I plays an important role in the body's antiviral response. Similar to other DNA viruses, ASFV has evolved a variety of immune escape strategies to antagonize IFN-I signaling and maintain its proliferation. In this study, we showed that the ASFV early protein pK205R strongly inhibited interferon-stimulated genes (ISGs) as well as the promoter activity of IFN-stimulated regulatory elements (ISREs). Mechanistically, pK205R interacted with the intracellular domains of IFNAR1 and IFNAR2, thereby inhibiting the interaction of IFNAR1/2 with JAK1 and TYK2 and hindering the phosphorylation and nuclear translocation of STATs. Subsequently, we generated a recombinant strain of the ASFV-pK205R point mutation, ASFV-pK205R7PM. Notably, we detected higher levels of ISGs in porcine alveolar macrophages (PAMs) than in the parental strain during the early stages of ASFV-pK205R7PM infection. Moreover, ASFV-pK205R7PM attenuated the inhibitory effect on IFN-I signaling. In conclusion, we identified a new ASFV immunosuppressive protein that increases our understanding of ASFV immune escape mechanisms.
非洲猪瘟病毒(ASFV)是一种核细胞质大 DNA 病毒(NCLDV),可引起家猪和野猪的致命性出血性疾病,严重威胁着全球养猪业的发展。IFN-I 在机体抗病毒反应中发挥重要作用。与其他 DNA 病毒类似,ASFV 进化出多种免疫逃逸策略,拮抗 IFN-I 信号通路并维持其增殖。在本研究中,我们表明 ASFV 早期蛋白 pK205R 强烈抑制干扰素刺激基因(ISGs)以及 IFN 刺激调节元件(ISREs)的启动子活性。机制上,pK205R 与 IFNAR1 和 IFNAR2 的细胞内结构域相互作用,从而抑制 IFNAR1/2 与 JAK1 和 TYK2 的相互作用,并阻碍 STATs 的磷酸化和核转位。随后,我们构建了 ASFV-pK205R 点突变的重组毒株 ASFV-pK205R7PM。值得注意的是,我们发现在 ASFV-pK205R7PM 感染的早期阶段,猪肺泡巨噬细胞(PAMs)中的 ISGs 水平高于亲本株。此外,ASFV-pK205R7PM 减弱了对 IFN-I 信号通路的抑制作用。总之,我们鉴定了一种新的 ASFV 免疫抑制蛋白,增加了我们对 ASFV 免疫逃逸机制的理解。