Core Structure of S2 from the Human Coronavirus NL63 Spike Glycoprotein,

七肽重复区 反平行(数学) 脂质双层融合 糖蛋白 冠状病毒 病毒进入 跨膜结构域 蛋白质结构 三聚体 生物 肽序列 化学 生物物理学 结晶学 病毒学 氨基酸 病毒 分子生物学 生物化学 病毒复制 2019年冠状病毒病(COVID-19) 医学 物理 二聚体 病理 量子力学 磁场 疾病 有机化学 传染病(医学专业) 基因
作者
Qi Zheng,Yiqun Deng,Jie Liu,Lia van der Hoek,Ben Berkhout,Min Lu
出处
期刊:Biochemistry [American Chemical Society]
卷期号:45 (51): 15205-15215 被引量:57
标识
DOI:10.1021/bi061686w
摘要

Human coronavirus NL63 (HCoV-NL63) has recently been identified as a causative agent of acute respiratory tract illnesses in infants and young children. The HCoV-NL63 spike (S) protein mediates virion attachment to cells and subsequent fusion of the viral and cellular membranes. This viral entry process is a primary target for vaccine and drug development. HCoV-NL63 S is expressed as a single-chain glycoprotein and consists of an N-terminal receptor-binding domain (S1) and a C-terminal transmembrane fusion domain (S2). The latter contains two highly conserved heptad-repeat (HR) sequences that are each extended by 14 amino acids relative to those of the SARS coronavirus or the prototypic murine coronavirus, mouse hepatitis virus. Limited proteolysis studies of the HCoV-NL63 S2 fusion core identify an α-helical domain composed of a trimer of the HR segments N57 and C42. The crystal structure of this complex reveals three C42 helices entwined in an oblique and antiparallel manner around a central triple-stranded coiled coil formed by three N57 helices. The overall geometry comprises distinctive high-affinity conformations of interacting cross-sectional layers of the six helices. As a result, this structure is unusually stable, with an apparent melting temperature of 78 °C in the presence of the denaturant guanidine hydrochloride at 5 M concentration. The extended HR regions may therefore be required to prime the group 1 S glycoproteins for their fusion-activating conformational changes during viral entry. Our results provide an initial basis for understanding an intriguing interplay between the presence or absence of proteolytic maturation among the coronavirus groups and the membrane fusion activity of their S glycoproteins. This study also suggests a potential strategy for the development of improved HCoV-NL63 fusion inhibitors.
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