非洲猪瘟病毒基因MGF_360-4L通过募集线粒体选择性自噬受体SQSTM1来抑制干扰素信号传导,降解MDA5,拮抗先天免疫反应。

IF 5.1 1区 生物学 Q1 MICROBIOLOGY
mBio Pub Date : 2025-04-09 Epub Date: 2025-02-25 DOI:10.1128/mbio.02677-24
Hualin Sun, Jifei Yang, Zhonghui Zhang, Mengli Wu, Zhancheng Tian, Ying Liu, Xiaoqiang Zhang, Jianhao Zhong, Songlin Yang, Yikang Chen, Jianxun Luo, Guiquan Guan, Hong Yin, Qingli Niu
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引用次数: 0

摘要

多基因家族(MGF) 360基因是非洲猪瘟病毒(ASFV)的毒力基因,主要针对宿主的关键免疫分子,抑制宿主干扰素(IFN)的产生和干扰素刺激基因(ISG)的转录,从而损害宿主的先天免疫反应,从而实现病毒的有效复制。然而,MGF 360毒力基因与宿主分子的相互作用,以及MGF 360基因调控宿主免疫反应和IFN信号的机制还有待进一步阐明。在这项研究中,我们发现ASFV MGF_360-4L与MDA5相互作用并招募线粒体选择性自噬受体SQSTM1来降解MDA5,从而损害IFN信号传导并损害宿主先天免疫反应。此外,mgf360 - 4l抑制MDA5和MAVS之间的相互作用,阻断isg15介导的MDA5的isg酰化。mgf360 - 4l缺失显著减弱病毒诱导的线粒体自噬。此外,OAS1在K290, K295和K327位点泛素化mgf360 - 4l。最后,以ASFV- cn /SC/2019为骨架构建了缺乏MGF_360-4L基因的重组ASFV (ASFV-∆MGF_360-4L),结果表明,ASFV-∆MGF_360-4L在PAM细胞中的复制动力学与体外高毒力亲本ASFV- wt相似。ASFV-∆MGF_360-4L感染的家猪表现出比亲本ASFV- wt感染的猪更温和的症状,并且ASFV-∆MGF_360-4L感染的猪表现出增强的宿主先天抗病毒免疫反应,证实了ASFV基因组中MGF_360-4L基因的缺失大大降低了猪的毒力,对亲本ASFV的攻击提供了有效的保护。总之,我们鉴定出一种新的ASFV毒力基因MGF_360-4L,进一步阐明了ASFV感染机制,并为疫苗开发提供了新的候选基因。非洲猪瘟病毒(ASFV)感染可导致猪急性死亡,目前尚无有效的预防疫苗。多基因家族(MGF)毒力基因已被证明对ASFV逃避宿主先天免疫反应的能力至关重要。然而,大多数MGF基因的功能仍然未知,这给ASFV疫苗和抗病毒药物的开发带来了重大挑战。在这项研究中,我们发现了ASFV的一个毒力基因MGF_360-4L,该基因靶向并招募选择性自噬受体p62来介导dsRNA传感器MDA5的降解,从而阻断干扰素信号传导。此外,它还抑制isg15介导的MDA5的isg酰化活化。缺乏mgf360 - 4l的ASFV毒力降低,对猪有保护作用。我们的数据确定了一种新的毒力基因,并为ASFV疫苗的开发提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The African swine fever virus gene MGF_360-4L inhibits interferon signaling by recruiting mitochondrial selective autophagy receptor SQSTM1 degrading MDA5 antagonizing innate immune responses.

Multigene family (MGF) 360 genes, which are African swine fever virus (ASFV) virulence genes, primarily target key host immune molecules to suppress host interferon (IFN) production and interferon-stimulated gene (ISG) transcription, impairing host innate immune responses for efficient viral replication. However, the interactions between MGF 360 virulence genes and host molecules, as well as the mechanisms through which MGF 360 genes regulate host immune responses and IFN signaling, require further elucidation. In this study, we discovered that ASFV MGF_360-4L interacts with MDA5 and recruits the mitochondrial selective autophagy receptor SQSTM1 to degrade MDA5, thus impairing IFN signaling and compromising host innate immune responses. Furthermore, MGF_360-4L inhibits the interaction between MDA5 and MAVS, blocking ISG15-mediated ISGylation of MDA5. MGF_360-4L deficiency significantly attenuated virus-induced mitochondrial autophagy in vitro. Additionally, OAS1 ubiquitinates MGF_360-4L at residues K290, K295, and K327. Finally, a recombinant ASFV lacking the MGF_360-4L gene (ASFV-∆MGF_360-4L) was generated using ASFV-CN/SC/2019 as the backbone, which demonstrated that the replication kinetics of ASFV-∆MGF_360-4L in PAM cells were like those of the highly virulent parental ASFV-WT in vitro. Domestic pigs infected with ASFV-∆MGF_360-4L exhibited milder symptoms than those infected with parental ASFV-WT, and ASFV-∆MGF_360-4L-infected pigs presented with enhanced host innate antiviral immune response, confirming that the deletion of the MGF_360-4L gene from the ASFV genome highly attenuated virulence in pigs and provided effective protection against parental ASFV challenge. In conclusion, we identified a novel ASFV virulence gene, MGF_360-4L, further elucidating ASFV infection mechanisms and providing a new candidate for vaccine development.IMPORTANCEAfrican swine fever virus (ASFV) infection causes acute death in pigs, and there is currently no effective vaccine available for prevention. Multigene family (MGF) virulence genes have been shown to be crucial for ASFV's ability to evade host innate immune responses. However, the functions of most MGF genes remain unknown, which poses significant challenges for the development of ASFV vaccines and antiviral drugs. In this study, we identified a virulence gene of ASFV, MGF_360-4L, that targets and recruits the selective autophagy receptor p62 to mediate the degradation of the dsRNA sensor MDA5, thereby blocking interferon signaling. Additionally, it inhibits the ISG15-mediated ISGylation activation of MDA5. ASFV lacking MGF_360-4L showed reduced virulence and provided protection in pigs. Our data identify a novel virulence gene and provide new insights for ASFV vaccine development.

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来源期刊
mBio
mBio MICROBIOLOGY-
CiteScore
10.50
自引率
3.10%
发文量
762
审稿时长
1 months
期刊介绍: mBio® is ASM''s first broad-scope, online-only, open access journal. mBio offers streamlined review and publication of the best research in microbiology and allied fields.
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