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鉴定单纯疱疹病毒1型支架蛋白中与主要衣壳蛋白相互作用所需的最小疏水结构域。

Identification of a minimal hydrophobic domain in the herpes simplex virus type 1 scaffolding protein which is required for interaction with the major capsid protein.

作者信息

Hong Z, Beaudet-Miller M, Durkin J, Zhang R, Kwong A D

机构信息

Antiviral Chemotherapy Department, Schering-Plough Research Institute, Kenilworth, New Jersey 07033-0539, USA.

出版信息

J Virol. 1996 Jan;70(1):533-40. doi: 10.1128/JVI.70.1.533-540.1996.

Abstract

Recent biochemical and genetic studies have demonstrated that an essential step of the herpes simplex virus type 1 capsid assembly pathway involves the interaction of the major capsid protein (VP5) with either the C terminus of the scaffolding protein (VP22a, ICP35) or that of the protease (Pra, product of UL26). To better understand the nature of the interaction and to further map the sequence motif, we expressed the C-terminal 30-amino-acid peptide of ICP35 in Escherichia coli as a glutathione S-transferase fusion protein (GST/CT). Purified GST/CT fusion proteins were then incubated with 35S-labeled herpes simplex virus type 1-infected cell lysates containing VP5. The interaction between GST/CT and VP5 was determined by coprecipitation of the two proteins with glutathione Sepharose beads. Our results revealed that the GST/CT fusion protein specifically interacts with VP5, suggesting that the C-terminal domain alone is sufficient for interaction with VP5. Deletion analysis of the GST/CT binding domain mapped the interaction to a minimal 12-amino-acid motif. Substitution mutations further revealed that the replacement of hydrophobic residues with charged residues in the core region of the motif abolished the interaction, suggesting that the interaction is a hydrophobic one. A chaotropic detergent, 0.1% Nonidet P-40, also abolished the interaction, further supporting the hydrophobic nature of the interaction. Computer analysis predicted that the minimal binding motif could form a strong alpha-helix structure. Most interestingly, the alpha-helix model maximizes the hydropathicity of the minimal domain so that all of the hydrophobic residues are centered around a Phe residue on one side of the alpha-helix. Mutation analysis revealed that the Phe residue is absolutely critical for the binding, since changes to Ala, Tyr, or Trp abrogated the interaction. Finally, in a peptide competition experiment, the C-terminal 25-amino-acid peptide, as well as a minimal peptide derived from the binding motif, competed with GST/CT for interaction with VP5. In addition, a cyclic analog of the minimal peptide which is designed to stabilize an alpha-helical structure competed more efficiently than the minimal peptide. The evidence suggests that the C-terminal end of ICP35 forms an alpha-helical secondary structure, which may bind specifically to a hydrophobic pocket in VP5.

摘要

最近的生化和遗传学研究表明,单纯疱疹病毒1型衣壳组装途径的一个关键步骤涉及主要衣壳蛋白(VP5)与支架蛋白(VP22a,ICP35)的C末端或蛋白酶(Pra,UL26产物)的C末端相互作用。为了更好地理解这种相互作用的本质并进一步绘制序列基序,我们在大肠杆菌中表达了ICP35的C末端30个氨基酸的肽段,作为谷胱甘肽S-转移酶融合蛋白(GST/CT)。然后将纯化的GST/CT融合蛋白与含有VP5的35S标记的单纯疱疹病毒1型感染细胞裂解物一起孵育。通过用谷胱甘肽琼脂糖珠共沉淀这两种蛋白质来确定GST/CT与VP5之间的相互作用。我们的结果表明,GST/CT融合蛋白与VP5特异性相互作用,这表明仅C末端结构域就足以与VP5相互作用。对GST/CT结合结构域的缺失分析将相互作用定位到一个最小的12个氨基酸的基序。取代突变进一步表明,在基序的核心区域用带电荷的残基取代疏水残基会消除相互作用,这表明这种相互作用是一种疏水相互作用。一种离液剂,0.1%的Nonidet P-40,也消除了这种相互作用,进一步支持了这种相互作用的疏水性质。计算机分析预测,最小结合基序可以形成一个强α-螺旋结构。最有趣的是,α-螺旋模型使最小结构域的亲水性最大化,使得所有疏水残基都集中在α-螺旋一侧的一个苯丙氨酸残基周围。突变分析表明,苯丙氨酸残基对于结合绝对至关重要,因为将其变为丙氨酸、酪氨酸或色氨酸会消除相互作用。最后,在肽竞争实验中,C末端25个氨基酸的肽段以及源自结合基序的最小肽段与GST/CT竞争与VP5的相互作用。此外,设计用于稳定α-螺旋结构的最小肽段的环状类似物比最小肽段更有效地竞争。证据表明,ICP35的C末端形成一个α-螺旋二级结构,它可能特异性地结合到VP5中的一个疏水口袋。

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