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不同地影响冠状病毒Mac1 ADP核糖结合和水解活性的突变表明,它促进病毒复制周期的多个阶段。

Mutations differentially affecting the coronavirus Mac1 ADP-ribose binding and hydrolysis activities indicate that it promotes multiple stages of the viral replication cycle.

作者信息

O'Connor Joseph J, Roy Anuradha, Khattabi Reem, Kerr Catherine, Schwarting Nancy, Alhammad Yousef M, Gao Philip, Zhang Xiaoming, Deng Xufang, Fehr Anthony R

机构信息

Department of Molecular Biosciences, University of Kansas, Lawrence, Kansas, USA.

Infectious Disease Assay Development (IDAD) Core, University of Kansas, Lawrence, Kansas, USA.

出版信息

J Virol. 2025 Aug 19;99(8):e0062325. doi: 10.1128/jvi.00623-25. Epub 2025 Jul 30.

Abstract

UNLABELLED

All coronaviruses (CoVs) encode a conserved macrodomain, termed Mac1, in non-structural protein 3 (nsp3) that binds and hydrolyzes ADP-ribose covalently attached to proteins. Mac1 is a key virulence factor that counters antiviral ADP-ribosyltransferase (PARP) activity. Previously, we found that MHV strain JHM (JHMV) with a mutation in the adenine binding site, JHMV-D1329A, was extremely attenuated in all tested cell types as opposed to JHMV-N1347A, which only has a replication defect in bone marrow-derived macrophages (BMDMs). Interestingly, an N1347A/D1329A double mutant was unrecoverable, indicating an essential role for Mac1 in JHMV infection. We hypothesized that these mutations may impact different stages of the MHV life cycle. First, to clarify how these mutations affected the biochemical activities of Mac1, we generated Mac1 proteins encoding the same mutations. As expected, the D-A mutation was extremely defective in ADP-ribose binding but maintained enzyme activity. In contrast, we previously found that the N-A mutation had WT levels of ADP-ribose binding but low enzyme activity, confirming that these mutations differentially affect the biochemical functions of Mac1. Following infection, D1329A displayed a large defect in the accumulation of viral RNA compared to WT or N1347A in all cells tested. Alternatively, N1347A infection produced normal levels of viral RNA but produced reduced levels of viral protein in interferon-competent bone marrow-derived macrophages (BMDMs). These results suggest that Mac1 ADP-ribose binding and enzymatic activities promote different stages of the viral life cycle, demonstrating the critical importance of Mac1 for JHMV replication.

IMPORTANCE

Over the last three decades, coronaviruses have repeatedly demonstrated their potential to become significant veterinary and public health threats. Zoonotic transmission of the myriad known coronavirus strains will remain a concern, regardless of the advances in vaccines and treatment. One difficulty in anticipating the next coronavirus outbreak is its diverse lineage and high propensity for mutation and recombination. The coronavirus macrodomain, Mac1, is conserved among all known coronaviruses and is also conserved in the and families. Mac1 is a key factor in viral replication and pathogenesis, but its role in the replication cycle remains unclear. A deeper investigation of Mac1 function will identify conserved antiviral mechanisms and aid in the development of Mac1 inhibitors that represent a novel strategy for antiviral therapeutics.

摘要

未标记

所有冠状病毒(CoV)在非结构蛋白3(nsp3)中编码一个保守的大结构域,称为Mac1,它能结合并水解与蛋白质共价连接的ADP-核糖。Mac1是对抗抗病毒ADP-核糖基转移酶(PARP)活性的关键毒力因子。此前,我们发现腺嘌呤结合位点发生突变的MHV毒株JHM(JHMV),即JHMV-D1329A,在所有测试细胞类型中都极度减毒,而JHMV-N1347A仅在骨髓来源的巨噬细胞(BMDM)中存在复制缺陷。有趣的是,N1347A/D1329A双突变体无法恢复,这表明Mac1在JHMV感染中起关键作用。我们推测这些突变可能影响MHV生命周期的不同阶段。首先,为了阐明这些突变如何影响Mac1的生化活性,我们生成了编码相同突变的Mac1蛋白。正如预期的那样,D-A突变体在ADP-核糖结合方面存在极大缺陷,但仍保持酶活性。相比之下,我们之前发现N-A突变体的ADP-核糖结合水平与野生型相当,但酶活性较低,这证实了这些突变对Mac1生化功能的影响不同。感染后,与野生型或N1347A相比,D1329A在所有测试细胞中病毒RNA积累方面存在很大缺陷。另一方面,N1347A感染产生的病毒RNA水平正常,但在具有干扰素活性的骨髓来源巨噬细胞(BMDM)中产生的病毒蛋白水平降低。这些结果表明,Mac1的ADP-核糖结合和酶活性促进了病毒生命周期的不同阶段,证明了Mac1对JHMV复制至关重要。

重要性

在过去三十年中,冠状病毒多次显示出成为重大兽医和公共卫生威胁的潜力。无论疫苗和治疗方面取得何种进展,众多已知冠状病毒株的人畜共患病传播仍将是一个令人担忧的问题。预测下一次冠状病毒爆发的一个困难在于其多样的谱系以及高突变和重组倾向。冠状病毒大结构域Mac1在所有已知冠状病毒中都是保守的,并且在 和 家族中也保守。Mac1是病毒复制和发病机制中的关键因素,但其在复制周期中的作用仍不清楚。对Mac1功能进行更深入的研究将确定保守的抗病毒机制,并有助于开发Mac1抑制剂,这代表了一种新的抗病毒治疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1bc5/12363162/5f16cf11d09c/jvi.00623-25.f001.jpg

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