Coronavirus endoribonuclease nsp15 suppresses host protein synthesis and evades PKR-eIF2α-mediated translation shutoff to ensure viral protein synthesis.

IF 4.9 1区 医学 Q1 MICROBIOLOGY PLoS Pathogens Pub Date : 2025-03-17 eCollection Date: 2025-03-01 DOI:10.1371/journal.ppat.1012987
Xiaoqian Gong, Shanhuan Feng, Jiehuang Wang, Bo Gao, Wenxiang Xue, Hongyan Chu, Shouguo Fang, Yanmei Yuan, Yuqiang Cheng, Min Liao, Yingjie Sun, Lei Tan, Cuiping Song, Xusheng Qiu, Chan Ding, Edwin Tijhaar, Maria Forlenza, Ying Liao
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Abstract

The endoribonuclease (EndoU) nsp15 of coronaviruses plays a crucial role in evading host innate immune responses by reducing the abundance of viral double-stranded RNA (dsRNA). However, our understanding of its interactions with host cellular targets remains limited. In this study, we demonstrate that overexpression of nsp15 from four coronavirus genera inhibits cellular protein synthesis and causes nuclear retention of PABPC1. Mutation analysis confirms the essential role of EndoU activity in these processes. Fluorescence in situ hybridization (FISH) analysis shows that cellular mRNA co-localizes with nsp15 in certain cells. Real time RT-PCR indicates that the mRNA levels of several antiviral genes decrease in cells expressing nsp15, and this reduction depends on the EndoU activity of nsp15. Using infectious bronchitis virus (IBV) as a model, we investigate the inhibitory effect of nsp15 on protein translation during infection. We find that infection with IBV with functional nsp15 suppresses protein synthesis in a PKR-eIF2α independent manner, with PABPC1 mainly located in the cytoplasm. However, infection with EndoU activity-deficiency mutant virus rIBV-nsp15-H238A results in the accumulation of viral dsRNA, triggering a PKR-eIF2α-dependent shutdown of protein synthesis and leading to the nuclear relocation of PABPC1. In the absence of the PKR-eIF2α pathway, IBV is still able to suppress host protein synthesis, while the inhibitory effect of rIBV-nsp15-H238A on protein synthesis was significantly reduced. Although nsp15 locates to replication-transcription complex (RTC) during infection, RNA immunoprecipitation (RIP)-Seq analysis confirms that IBV nsp15 binds to six viral RNAs and 237 cellular RNAs. The proteins encoded by the nsp15-associated cellular RNAs predominantly involved in translation. Additionally, proteomic analysis of the nsp15 interactome identifies 809 cellular proteins, which are significantly enriched in pathways related to ribosome biogenesis, RNA processing, and translation. Therefore, nsp15 helps virus circumvent the detrimental PKR-eIF2α pathway by reducing viral dsRNA accumulation and suppresses host protein synthesis by targeting host RNAs and proteins. This study reveals unique yet conserved mechanisms of protein synthesis shutdown by catalytically active nsp15 EndoU, shedding light on how coronaviruses regulate host protein expression.

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冠状病毒核糖核酸内切酶nsp15抑制宿主蛋白的合成,并逃避pcr - eif2 α介导的翻译关闭,以确保病毒蛋白的合成。
冠状病毒的核糖核酸内切酶(EndoU) nsp15通过降低病毒双链RNA (dsRNA)的丰度,在逃避宿主先天免疫应答中起着至关重要的作用。然而,我们对其与宿主细胞靶点相互作用的理解仍然有限。在这项研究中,我们证实了四种冠状病毒属的nsp15过表达抑制细胞蛋白合成并导致PABPC1的核保留。突变分析证实了EndoU活性在这些过程中的重要作用。荧光原位杂交(FISH)分析表明,在某些细胞中,细胞mRNA与nsp15共定位。Real - time RT-PCR显示,在表达nsp15的细胞中,几种抗病毒基因的mRNA水平下降,这种下降取决于nsp15的EndoU活性。以传染性支气管炎病毒(IBV)为模型,研究了nsp15在感染过程中对蛋白质翻译的抑制作用。我们发现功能性nsp15感染IBV以不依赖于PKR-eIF2α的方式抑制蛋白合成,其中PABPC1主要位于细胞质中。然而,感染EndoU活性缺失突变病毒rIBV-nsp15-H238A会导致病毒dsRNA的积累,触发依赖于pkr - eif2 α的蛋白质合成关闭,导致PABPC1的核重新定位。在缺乏PKR-eIF2α通路的情况下,IBV仍能抑制宿主蛋白合成,而rIBV-nsp15-H238A对蛋白合成的抑制作用显著降低。虽然nsp15在感染过程中定位于复制转录复合体(RTC),但RNA免疫沉淀(RIP)-Seq分析证实,IBV nsp15与6种病毒RNA和237种细胞RNA结合。由nsp15相关细胞rna编码的蛋白质主要参与翻译。此外,nsp15相互作用组的蛋白质组学分析鉴定了809个细胞蛋白,这些蛋白在核糖体生物发生、RNA加工和翻译相关的途径中显著富集。因此,nsp15通过减少病毒dsRNA的积累,帮助病毒绕过有害的PKR-eIF2α途径,并通过靶向宿主rna和蛋白质抑制宿主蛋白质合成。该研究揭示了催化活性nsp15 EndoU蛋白合成关闭的独特而保守的机制,揭示了冠状病毒如何调节宿主蛋白表达。
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来源期刊
PLoS Pathogens
PLoS Pathogens MICROBIOLOGY-PARASITOLOGY
自引率
3.00%
发文量
598
期刊介绍: Bacteria, fungi, parasites, prions and viruses cause a plethora of diseases that have important medical, agricultural, and economic consequences. Moreover, the study of microbes continues to provide novel insights into such fundamental processes as the molecular basis of cellular and organismal function.
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