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单纯疱疹病毒1型交通控制器UL37 N端半段的晶体结构

Crystal Structure of the N-Terminal Half of the Traffic Controller UL37 from Herpes Simplex Virus 1.

作者信息

Koenigsberg Andrea L, Heldwein Ekaterina E

机构信息

Department of Molecular Biology and Microbiology and Graduate Program in Molecular Microbiology, Sackler School of Graduate Biomedical Sciences, Tufts University School of Medicine, Boston, Massachusetts, USA.

Department of Molecular Biology and Microbiology and Graduate Program in Molecular Microbiology, Sackler School of Graduate Biomedical Sciences, Tufts University School of Medicine, Boston, Massachusetts, USA

出版信息

J Virol. 2017 Sep 27;91(20). doi: 10.1128/JVI.01244-17. Print 2017 Oct 15.

Abstract

Inner tegument protein UL37 is conserved among all three subfamilies of herpesviruses. Studies of UL37 homologs from two alphaherpesviruses, herpes simplex virus 1 (HSV-1) and pseudorabies virus (PRV), have suggested that UL37 plays an essential albeit poorly defined role in intracellular capsid trafficking. At the same time, HSV and PRV homologs cannot be swapped, which suggests that in addition to a conserved function, UL37 homologs also have divergent virus-specific functions. Accurate dissection of UL37 functions requires detailed maps in the form of atomic-resolution structures. Previously, we reported the crystal structure of the N-terminal half of UL37 (UL37N) from PRV. Here, we report the crystal structure of HSV-1 UL37N. Comparison of the two structures reveals that UL37 homologs differ in their overall shapes, distributions of surface charges, and locations of projecting loops. In contrast, the previously identified R2 surface region is structurally conserved. We propose that within the N-terminal half of UL37, functional conservation is centered within the R2 surface region, whereas divergent structural elements pinpoint regions mediating virus-specific functions and may engage different binding partners. Together, the two structures can now serve as templates for a structure-guided exploration of both conserved and virus-specific functions of UL37. The ability to move efficiently within host cell cytoplasm is essential for replication in all viruses. It is especially important in the neuroinvasive alphaherpesviruses, such as human herpes simplex virus 1 (HSV-1), HSV-2, and veterinarian pseudorabies virus (PRV), that infect the peripheral nervous system and have to travel long distances along axons. Capsid movement in these viruses is controlled by capsid-associated tegument proteins, yet their specific roles have not yet been defined. Systematic exploration of the roles of tegument proteins in capsid trafficking requires detailed navigational charts in the form of their three-dimensional structures. Here, we determined the crystal structure of the N-terminal half of a conserved tegument protein, UL37, from HSV-1. This structure, along with our previously reported structure of the UL37 homolog from PRV, provides a much needed 3-dimensional template for the dissection of both conserved and virus-specific functions of UL37 in intracellular capsid trafficking.

摘要

内膜蛋白UL37在疱疹病毒的所有三个亚科中都保守。对来自两种α疱疹病毒,即单纯疱疹病毒1型(HSV-1)和伪狂犬病病毒(PRV)的UL37同源物的研究表明,UL37在细胞内衣壳运输中起着至关重要但定义尚不明确的作用。同时,HSV和PRV的同源物不能互换,这表明除了保守功能外,UL37同源物还具有不同的病毒特异性功能。准确剖析UL37的功能需要以原子分辨率结构形式呈现的详细图谱。此前,我们报道了PRV的UL37 N端一半(UL37N)的晶体结构。在此,我们报道了HSV-1 UL37N的晶体结构。两种结构的比较表明,UL37同源物在整体形状、表面电荷分布和突出环的位置上存在差异。相比之下,先前确定的R2表面区域在结构上是保守的。我们提出,在UL37的N端一半内,功能保守集中在R2表面区域,而不同的结构元件则确定了介导病毒特异性功能的区域,并可能与不同的结合伴侣相互作用。总之,这两种结构现在可以作为模板,用于对UL37的保守功能和病毒特异性功能进行结构导向的探索。在宿主细胞质中高效移动的能力对所有病毒的复制都至关重要。这在神经侵袭性α疱疹病毒中尤为重要,例如感染外周神经系统并必须沿轴突长距离传播的人类单纯疱疹病毒1型(HSV-1)、HSV-2和兽医伪狂犬病病毒(PRV)。这些病毒中的衣壳运动由衣壳相关的内膜蛋白控制,但其具体作用尚未明确。系统探索内膜蛋白在衣壳运输中的作用需要以三维结构形式呈现的详细导航图。在此,我们确定了HSV-1中一种保守内膜蛋白UL37的N端一半的晶体结构。该结构与我们先前报道的PRV的UL37同源物结构一起,为剖析UL37在细胞内衣壳运输中的保守功能和病毒特异性功能提供了急需的三维模板。

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