Impact of the changes in substrate specificity of herpes simplex virus 1 protein kinase Us3 on viral infection in vitro and in vivo.

IF 4 2区 医学 Q2 VIROLOGY
Saori Shio, Akihisa Kato, Jurika Kawasaki, Kousuke Takeshima, Yuhei Maruzuru, Naoto Koyanagi, Hayato Harima, Yasushi Kawaguchi
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引用次数: 0

Abstract

A serine-threonine protein kinase (PK), Us3, encoded by herpes simplex virus 1 (HSV-1), shares substrate specificity with host cellular PKs, protein kinase A (PKA), and AKT. Many Us3 substrates have been identified, and it is thought that during HSV-1 infection, Us3 fine-tunes the phosphorylation levels of individual substrates within their repertoire. However, the significance of this regulatory fine-tuning by Us3 during HSV-1 infection is poorly understood. Here, we found alanine at position 326 (Ala-326) in Us3 was required for the proper fine-tuning of Us3-mediated phosphorylation across the target repertoire in HSV-1-infected cells. Using recombinant viruses in which Us3 Ala-326 was replaced with valine (A326V) or isoleucine (A326I), we showed these mutations selectively altered the phosphorylation of only a subset of at least 14 Us3 target proteins tested in HSV-1-infected cells, with each mutation generally affecting different targets. Of note, (i) both mutations significantly reduced plaque sizes without affecting viral replication in cell cultures; (ii) the Us3 A326I mutation impaired viral replication in the brains of mice and improved survival following intracranial infection, whereas the Us3 A326V mutation had little effect; and (iii) the Us3 A326V mutation reduced ocular pathogenic manifestations and viral replication in the trigeminal ganglia and brains of mice, thereby improving survival following ocular infection. Taken together, these results suggest that the proper fine-tuning of Us3-mediated phosphorylation across its target repertoire is required for efficient cell-to-cell spread of HSV-1 in vitro, and its replication and pathogenicity in vivo.IMPORTANCEThe activation loop (A-loop) is a conformationally flexible loop that critically regulates cellular protein kinases (PKs), but its role in viral PKs during infection remains unclear. We demonstrated alanine at position 326 (Ala-326) in the A-loop of herpes simplex virus 1 (HSV-1) PK Us3 was important for the proper fine-tuning of Us3-mediated phosphorylation across the target repertoire in HSV-1-infected cells. This fine-tuning was necessary for efficient HSV-1 cell-cell spread in cell cultures, and replication and pathogenicity in mice. Taken together, fine-tuning phosphorylation levels of individual Us3 targets within its repertoire is important for HSV-1 infection in vitro and in vivo. Different amino acid substitutions at Us3 Ala-326 selectively affected the phosphorylation of most distinct Us3 targets, leading to varied phenotypic outcomes in viral replication and pathogenicity in mice. These results provide important clues to elucidate the mechanisms by which Us3 regulates HSV-1 infection in vivo.

单纯疱疹病毒1蛋白激酶Us3底物特异性变化对体内外病毒感染的影响
由单纯疱疹病毒1号(HSV-1)编码的丝氨酸-苏氨酸蛋白激酶(PK) Us3与宿主细胞PKs、蛋白激酶A (PKA)和AKT具有底物特异性。许多Us3底物已经被鉴定出来,并且被认为在HSV-1感染期间,Us3微调了单个底物的磷酸化水平。然而,在HSV-1感染期间,Us3调控微调的意义尚不清楚。在这里,我们发现在hsv -1感染的细胞中,Us3位点326 (Ala-326)上的丙氨酸对于Us3介导的磷酸化的适当微调是必需的。利用缬氨酸(A326V)或异亮氨酸(A326I)取代Us3 Ala-326的重组病毒,我们发现这些突变选择性地改变了hsv -1感染细胞中至少14个Us3靶蛋白的一小部分磷酸化,每个突变通常影响不同的靶标。值得注意的是,(i)这两种突变都显著减小了斑块大小,而不影响细胞培养中的病毒复制;(ii) us3a326i突变破坏了病毒在小鼠大脑中的复制,提高了颅内感染后的存活率,而us3a326v突变几乎没有影响;(iii) us3a326v突变减少了小鼠眼部的致病表现和病毒在三叉神经节和大脑中的复制,从而提高眼部感染后的存活率。综上所述,这些结果表明,us3介导的磷酸化在其靶标库中的适当微调是HSV-1在体外有效的细胞间传播及其在体内的复制和致病性所必需的。激活环(a -loop)是一个构象灵活的环,对细胞蛋白激酶(PKs)起关键的调节作用,但其在感染病毒PKs中的作用尚不清楚。我们证明了单纯疱疹病毒1 (HSV-1) PK Us3的a环326位(Ala-326)的丙氨酸对于在HSV-1感染的细胞中Us3介导的磷酸化的适当微调是重要的。这种微调对于HSV-1细胞在细胞培养物中的有效传播以及在小鼠中的复制和致病性是必要的。综上所述,在其库中微调单个Us3靶点的磷酸化水平对体外和体内HSV-1感染很重要。在us3ala -326上不同的氨基酸替换选择性地影响大多数不同的Us3靶点的磷酸化,导致病毒在小鼠中的复制和致病性的不同表型结果。这些结果为阐明Us3在体内调控HSV-1感染的机制提供了重要线索。
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来源期刊
Journal of Virology
Journal of Virology 医学-病毒学
CiteScore
10.10
自引率
7.40%
发文量
906
审稿时长
1 months
期刊介绍: Journal of Virology (JVI) explores the nature of the viruses of animals, archaea, bacteria, fungi, plants, and protozoa. We welcome papers on virion structure and assembly, viral genome replication and regulation of gene expression, genetic diversity and evolution, virus-cell interactions, cellular responses to infection, transformation and oncogenesis, gene delivery, viral pathogenesis and immunity, and vaccines and antiviral agents.
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