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Characterization of the heptad repeat regions, HR1 and HR2, and design of a fusion core structure model of the spike protein from severe acute respiratory syndrome (SARS) coronavirus

机译:七重重复区域HR1和HR2的特征以及严重急性呼吸系统综合症(SARS)冠状病毒的刺突蛋白融合核心结构模型的设计

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摘要

Severe acute respiratory syndrome coronavirus (SARS-CoV) is a newly emergent virus responsible for a worldwide epidemic in 2003. The coronavirus spike proteins belong to class I fusion proteins, and are characterized by the existence of two heptad repeat (HR) regions, HR1 and HR2. The HRI region in coronaviruses is predicted to be considerably longer than that in other type I virus fusion proteins. Therefore the exact binding sequence to HR2 from the HRI is not clear. In this study, we defined the region of HRI that binds to HR2 by a series of biochemical and biophysical measures. Subsequently the defined HRI (902-952) and HR2 (1145-1184) chains, which are different from previously defined binding regions, were linked together by a flexible linker to form a single-chain construct, 2-Helix. This protein was expressed in Escherichia coli and forms a typical six-helix coiled coil bundle. Highly conserved HR regions between mouse hepatitis virus (MHV) and SARS-CoV spike proteins suggest a similar three-dimensional structure for the two fusion cores. Here, we constructed a homology model for SARS coronavirus fusion core based on our biochemical analysis and determined the MHV fusion core structure. We also propose an important target site for fusion inhibitor design and several strategies, which have been successfully used in fusion inhibitor design for human immunodeficiency virus (HlV), for the treatment of SARS infection.
机译:严重急性呼吸系统综合症冠状病毒(SARS-CoV)是一种新出现的病毒,在2003年引起全球流行。该冠状病毒刺突蛋白属于I类融合蛋白,其特征是存在两个七重复序列(HR)区域HR1和HR2。冠状病毒中的HRI区预计比其他I型病毒融合蛋白中的HRI区更长。因此,尚不清楚HRI与HR2的确切结合序列。在这项研究中,我们通过一系列生化和生物物理方法定义了与HR2结合的HRI区域。随后,与先前定义的结合区不同的已定义HRI(902-952)和HR2(1145-1184)链通过柔性接头连接在一起,形成单链构建体2-Helix。该蛋白在大肠杆菌中表达,并形成典型的六螺旋卷曲螺旋束。小鼠肝炎病毒(MHV)和SARS-CoV穗突蛋白之间的高度保守的HR区表明两个融合核心具有相似的三维结构。在这里,我们根据生化分析构建了SARS冠状病毒融合核心的同源性模型,并确定了MHV融合核心的结构。我们还提出了融合抑制剂设计的重要靶位和几种策略,这些策略已成功用于人类免疫缺陷病毒(HlV)融合抑制剂设计,以治疗SARS感染。

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