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1.
冠状病毒是有包膜的单股正链RNA病毒。作为人和动物的重要致病原,冠状病毒感染主要导致宿主呼吸系统、肝脏、胃肠道以及神经系统出现急性或慢性症状。2000年以来,传染性非典型肺炎和中东呼吸综合征的暴发,以及猪流行性腹泻病毒在全球猪群中的暴发流行,引起大家对动物冠状病毒的极大重视。S蛋白具有受体结合活性和膜融合活性,是冠状病毒感染细胞的关键蛋白;S蛋白在病毒的组织或宿主嗜性和毒力等方面发挥重要作用。本文重点对近年来冠状病毒S蛋白的结构、功能以及S蛋白与受体相互作用的研究进行综述,以期为冠状病毒的入侵机制和反向遗传学研究以及受体阻断药物的开发提供参考。  相似文献   

2.
棘突(spike, S)蛋白是冠状病毒表面必不可少的跨膜糖蛋白,在病毒进入宿主细胞时具有结合受体和诱导膜融合的双重作用。大部分冠状病毒S蛋白的受体结合域位于S1-CTD(即相对应的结构域B),而经典的乙型冠状病毒模型鼠肝炎病毒(mouse hepatitis virus, MHV)的受体mCEACAM1a与S1-NTD(即相对应的结构域A)结合,其结构域B的作用仍未完全清楚。本研究通过构建结构域B和S2膜融合元件的缺失突变体,并使其在鼠神经母细胞瘤细胞系Neuro-2a内成功表达,证实了结构域B对病毒S蛋白导致的细胞-细胞间膜融合是必需的。用不同方法处理的病毒颗粒作为抗原免疫小鼠,所获得的多克隆抗体进一步显示,结构域B不但是S蛋白的主要抗原决定簇,而且能诱导中和抗体明显抑制病毒感染和S蛋白介导的膜融合作用。此结果为阐述不同冠状病毒的致病性与感染性差异提供了新思路。  相似文献   

3.
为了解重症急性呼吸综合征冠状病毒(SARS—CoV)表面S蛋白的受体结合功能域及其在宿主细胞上的作用受体,应用PCR技术从SARS—CoV cDNA中克隆到S蛋白的全长基因,并构建了S蛋白与疱疹性口腔炎病毒胞膜蛋白(VSV—G)融合表达载体pVSV—G‘-SG,进而为制备含有SARS—CoVS蛋白膜外区的逆转录病毒假毒粒奠定了实验基础。  相似文献   

4.
刺突蛋白(S)和核心蛋白(N)是SARS冠状病毒的主要结构蛋白.在病毒细胞受体结合和病毒包装过程起重要作用.重组融合表达这2种蛋白具有较高的诊断学价值.对SARS病毒N蛋白和S蛋白氨基酸序列进行计算机分析,选择含有优势抗原表位的N蛋白1~227位氨基酸片段和S蛋白450~650位氨基酸片段,采用序列重叠延伸策略(sequenceoverlappingextension,SOE)构建编码N1227LinkerS450650新型融合蛋白的基因片段,导入原核表达载体,实现融合蛋白在大肠杆菌的高效表达.利用组氨酸标签亲和层析的方法纯化,获得高纯度的融合蛋白.对该融合蛋白的结构特征模拟分析的结果显示,其免疫化学性质均无显著改变.采用ELISA和Western印迹方法对其识别SARS冠状病毒特异性抗体的能力进行初步鉴定,显示该融合蛋白具有较好的抗原性和特异性,可有效特异性地检测恢复期SARS病人血清中抗SARS冠状病毒结构蛋白的抗体,可以作为SARS冠状病毒感染的辅助诊断手段.  相似文献   

5.
SARS-CoV-2是一种高致病性且传播迅速的病原体,通过刺突糖蛋白(Spike glycoprotein,S蛋白)识别宿主细胞表面的受体来实现入侵和感染。对S蛋白进行系统的生物信息学分析和原核表达,有助于深入理解S蛋白的功能和阐明该蛋白介导病毒感染的分子机制。本文采用Protparam、Pfam、TMHMM、ExPASy-ProtScale、PSORTⅡ、SignalP、UniProt、NetPhos 3.1、NetNGlyc 1.0、NetOGlyc 4.0和BLAST等生物信息学软件和数据库对S蛋白的理化性质、亚细胞定位、翻译后修饰及相互作用网络等生物学特性进行了系统分析。利用Clustal X2和MEGA7.0软件对该蛋白进行了基于氨基酸序列的同源性分析和系统进化分析。最后,通过分子克隆技术构建重组表达载体pET-22b-S并进行原核表达。结果显示,S蛋白由1273个氨基酸组成,分子量141.2 kD,等电点6.24,有两个卷曲螺旋结构,一个跨膜螺旋区,疏水性较强。S蛋白包含刺突受体结合结构域和S2糖蛋白结构域,主要分布于宿主细胞的内质网膜和细胞膜,含有136个潜在的磷酸化位点和20个可能的糖基化位点。与SARS-CoV-2 S蛋白序列一致性最高的是SARS冠状病毒、SARS冠状病毒WH20和蝙蝠冠状病毒HKU3,均为76%。SARS-CoV-2与SARS冠状病毒和蝙蝠冠状病毒聚为一大支,提示它们可能具有共同的祖先。S蛋白主要在细菌裂解液离心之后的沉淀中表达,这为后续的结构分析和疫苗研发奠定了基础。S蛋白在SARS冠状病毒和蝙蝠冠状病毒之间保守性较高,提示其在病毒入侵过程中具有重要功能。SARS-CoV-2与SARS冠状病毒和蝙蝠冠状病毒可能具有共同的祖先。本研究为SARS-CoV-2 S蛋白的表达纯化、结构与功能研究提供了重要的数据基础,有助于全面揭示S蛋白的生物学功能,同时为设计和筛选靶向S蛋白的新型抗病毒药物提供了科学依据。  相似文献   

6.
严重急性呼吸综合征 (SARS) 是一种新出现的人类传染病,该病的病原是 SARS 冠状病毒 (SARS-CoV). S 蛋白是 SARS 冠状病毒的一种主要结构蛋白,它在病毒与宿主细胞受体结合以及诱导机体产生中和抗体中起重要作用 . 研究表明 S 蛋白与受体结合的核心区域为第 318 ~ 510 氨基酸残基的片段 . 首先克隆并用 pGEX-6p-1 载体融合表达了该受体结合结构域,并且通过蛋白质印迹分析表明,该受体结合结构域融合蛋白能被 SARS 康复患者血清和 S 蛋白特异的单克隆抗体所识别 . 为了对这一区域进行抗原表位作图,进一步设计了一套 23 个覆盖受体结合结构域的长 16 个氨基酸残基的部分重叠短肽,并进行了 GST 融合表达 . 用免疫动物血清和单克隆抗体 D3D1 对 23 个融合蛋白进行蛋白质印迹和 ELISA 免疫反应性分析,结果鉴定出两个抗原表位 SRBD3(F334PSVYAWERKKISNCV349) 和表位 D3D1 (K447LRPFERDI455). 其结果对进一步分析 S 蛋白结构与功能以及诊断试剂和基因工程疫苗的研究有一定意义 .  相似文献   

7.
冠状病毒(Coronavirus)是具有包膜的正单链RNA病毒,基因组大小介于26 000与32 000 nt之间,编码刺突蛋白(S)、包膜蛋白(E)、膜蛋白(M)和核壳蛋白(N)等四种结构蛋白、复制酶(ORF1a/b)与若干辅助蛋白,部分病毒还具有血细胞凝集素酯酶(HE),这些蛋白除维持病毒结构,还有促进感染与抵抗宿主免疫反应等功能,其中刺突蛋白可与宿主细胞表面的受体结合,使病毒包膜和宿主细胞的膜融合以感染细胞.冠状病毒的感染会影响细胞的许多信号转导途径,引发免疫反应,是一类可感染哺乳动物与鸟类的病毒.  相似文献   

8.
人冠状病毒NL63受体结合区蛋白是其免疫学诊断和疫苗研究的主要靶点,在受体吸附、病毒进入细胞及膜融合中起关键作用。本研究在E.coli系统中进行人冠状病毒NL63受体结合区(RBD)大、小蛋白的表达纯化,并对其进行免疫学鉴定。首先密码子优化设计合成了HCoV-NL63的RBD大片段(RL:232-684aa)与小片段(RS:476-616aa)的编码基因,并将其克隆进硫氧还蛋白表达载体pM48,构建了人冠状病毒NL63的受体结合区蛋白(RBD)大(RL)、小(RS)片段与硫氧还蛋白的融合表达质粒;转化E.coli BL21pLys S,利用IPTG进行诱导表达,用镍亲和层析对蛋白进行纯化,并以表达HCoV-NL63RL与RS蛋白的重组痘苗病毒免疫小鼠血清对重组蛋白进行免疫印迹鉴定。结果表明在37℃,0.8mM IPTG诱导4h时,蛋白表达量达到最高,融合蛋白主要以包涵体形式表达,纯化后纯度可达95%以上。Western blot显示,两个融合蛋白均与痘苗病毒(天坛株)表达的HCoV-NL63RL与RS蛋白免疫的小鼠血清发生特异性反应。本研究首次在国内用原核系统表达纯化并鉴定了人冠状病毒NL63受体结合区大小蛋白(RL和RS),为人冠状病毒NL63感染的免疫学检测与疫苗研究提供了基础。  相似文献   

9.
冠状病毒(coronavirus)是单股正链RNA病毒,可以引起包括人类在内的多种动物的呼吸道、胃肠道和中枢神经系统疾病。病毒刺突蛋白(spike protein,S蛋白)的S1亚基的N-端结构域(N-terminal domain,NTD)和C-端结构域(C-terminal domain,CTD)都可以作为受体结合域(receptor-binding domain,RBD),且是病毒入侵宿主细胞的关键因素。一般认为,在病毒入侵过程中,S1-NTD主要通过识别并结合糖类受体(attachment receptors)来辅助S1-CTD特异性识别蛋白质受体[小鼠肝炎病毒(mouse hepatitis virus,MHV)除外]。然而,随着对新冠病毒的深入研究,发现S1-NTD也可以识别多种蛋白受体,其作用机理与特点也逐渐被揭示。该文综述了冠状病毒的S1-NTD与受体识别的结构基础,总结了冠状病毒S1-NTD的进化过程,有利于深入理解冠状病毒入侵宿主细胞机制和病毒跨物种传播机制,并为基于NTD的药物及疫苗的开发提供参考。  相似文献   

10.
研究鉴定激活hfgl2凝血酶原酶基因的SARS冠状病毒结构蛋白。从SARS尸检肺组织中抽提RNA后制备cDNA,分别扩增SARS-CoV的N、S2和M全长基因序列,再分别克隆到真核表达载体pcDNA3.1( )上。应用免疫组织化学分析鉴定pcDNA3.1-N、pcDNA3.1-M和pcDNA3.1-S2的表达。构建人纤维介素(hfgl2)启动子荧光素酶报告基因质粒,并将SARS冠状病毒结构蛋白表达质粒分别与其共转染以明确激活hfgl2基因转录的SARS冠状病毒结构蛋白。将目的片段克隆至pcDNA3.1( ),经酶切鉴定和测序鉴定无误;免疫组织化学染色可见明显的CHO细胞胞浆棕染。与hfgl2启动子共转染实验阐明SARS冠状病毒膜(M)蛋白和刺突糖(S2)蛋白对hfgl2基因的激活与对照组无显著差异,而SARS冠状病毒核心(N)蛋白可激活hfgl2启动子,使其转染活性提高4.6倍。SARS冠状病毒N蛋白可增强hfgl2基因的转录活性。  相似文献   

11.
Lassa virus (LASV), an arenavirus endemic to West Africa, causes Lassa fever—a lethal hemorrhagic fever. Entry of LASV into the host cell is mediated by the glycoprotein complex (GPC), which is the only protein located on the viral surface and comprises three subunits: glycoprotein 1 (GP1), glycoprotein 2 (GP2), and a stable signal peptide (SSP). The LASV GPC is a class one viral fusion protein, akin to those found in viruses such as human immunodeficiency virus (HIV), influenza, Ebola virus (EBOV), and severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). These viruses are enveloped and utilize membrane fusion to deliver their genetic material to the host cell. Like other class one fusion proteins, LASV-mediated membrane fusion occurs through an orchestrated sequence of conformational changes in its GPC. The receptor-binding subunit, GP1, first engages with a host cell receptor then undergoes a unique receptor switch upon delivery to the late endosome. The acidic pH and change in receptor result in the dissociation of GP1, exposing the fusion subunit, GP2, such that fusion can occur. These events ultimately lead to the formation of a fusion pore so that the LASV genetic material is released into the host cell. Interestingly, the mature GPC retains its SSP as a third subunit—a feature that is unique to arenaviruses. Additionally, the fusion domain contains two separate fusion peptides, instead of a standard singular fusion peptide. Here, we give a comprehensive review of the LASV GPC components and their unusual features.  相似文献   

12.
A novel coronavirus, severe acute respiratory syndrome coronavirus (SARS-CoV), has recently been identified as the causative agent of severe acute respiratory syndrome (SARS). SARS-CoV appears similar to other coronaviruses in both virion structure and genome organization. It is known for other coronaviruses that the spike (S) glycoprotein is required for both viral attachment to permissive cells and for fusion of the viral envelope with the host cell membrane. Here we describe the construction and expression of a soluble codon-optimized SARS-CoV S glycoprotein comprising the first 1,190 amino acids of the native S glycoprotein (S(1190)). The codon-optimized and native S glycoproteins exhibit similar molecular weight as determined by Western blot analysis, indicating that synthetic S glycoprotein is modified correctly in a mammalian expression system. S(1190) binds to the surface of Vero E6 cells, a cell permissive to infection, as demonstrated by fluorescence-activated cell sorter analysis, suggesting that S(1190) maintains the biologic activity present in native S glycoprotein. This interaction is blocked with serum obtained from recovering SARS patients, indicating that the binding is specific. In an effort to map the ligand-binding domain of the SARS-CoV S glycoprotein, carboxy- and amino-terminal truncations of the S(1190) glycoprotein were constructed. Amino acids 270 to 510 were the minimal receptor-binding region of the SARS-CoV S glycoprotein as determined by flow cytometry. We speculate that amino acids 1 to 510 of the SARS-CoV S glycoprotein represent a unique domain containing the receptor-binding site (amino acids 270 to 510), analogous to the S1 subunit of other coronavirus S glycoproteins.  相似文献   

13.
Lassa virus is an enveloped, bi-segmented RNA virus and the most prevalent and fatal of all Old World arenaviruses. Virus entry into the host cell is mediated by a tripartite surface spike complex, which is composed of two viral glycoprotein subunits, GP1 and GP2, and the stable signal peptide. Of these, GP1 binds to cellular receptors and GP2 catalyzes fusion between the viral envelope and the host cell membrane during endocytosis. The molecular structure of the spike and conformational rearrangements induced by low pH, prior to fusion, remain poorly understood. Here, we analyzed the three-dimensional ultrastructure of Lassa virus using electron cryotomography. Sub-tomogram averaging yielded a structure of the glycoprotein spike at 14-Å resolution. The spikes are trimeric, cover the virion envelope, and connect to the underlying matrix. Structural changes to the spike, following acidification, support a viral entry mechanism dependent on binding to the lysosome-resident receptor LAMP1 and further dissociation of the membrane-distal GP1 subunits.  相似文献   

14.
Enveloped viruses enter host cells either through endocytosis, or by direct fusion of the viral envelope and the membrane of the host cell. However, some viruses, such as HIV-1, HSV-1, and Epstein-Barr can enter a cell through either mechanism, with the choice of pathway often a function of the ambient physical chemical conditions, such as temperature and pH. We develop a stochastic model that describes the entry process at the level of binding of viral glycoprotein spikes to cell membrane receptors and coreceptors. In our model, receptors attach the cell membrane to the viral membrane, while subsequent binding of coreceptors enables fusion. The model quantifies the competition between fusion and endocytotic entry pathways. Relative probabilities for each pathway are computed numerically, as well as analytically in the high viral spike density limit. We delineate parameter regimes in which fusion or endocytosis is dominant. These parameters are related to measurable and potentially controllable quantities such as membrane bending rigidity and receptor, coreceptor, and viral spike densities. Experimental implications of our mechanistic hypotheses are proposed and discussed.  相似文献   

15.
The henipaviruses, represented by Nipah virus and Hendra virus, are emerging zoonotic viral pathogens responsible for repeated outbreaks associated with high morbidity and mortality in Australia, Southeast Asia, India and Bangladesh. These viruses enter host cells via a class I viral fusion mechanism mediated by their attachment and fusion envelope glycoproteins; efficient membrane fusion requires both these glycoproteins in conjunction with specific virus receptors present on susceptible host cells. The henipavirus attachment glycoprotein interacts with a cellular B class ephrin protein receptor triggering conformational alterations leading to the activation of the viral fusion (F) glycoprotein. The analysis of monoclonal antibody (mAb) reactivity with G has revealed measurable alterations in the antigenic structure of the glycoprotein following its binding interaction with receptor. These observations only appear to occur with full-length native G glycoprotein, which is a tetrameric oligomer, and not with soluble forms of G (sG), which are disulfide-linked dimers. Single amino acid mutations in a heptad repeat-like structure within the stalk domain of G can disrupt its association with F and subsequent membrane fusion promotion activity. Notably, these mutants of G also appear to confer a postreceptor bound conformation implicating the stalk domain as an important element in the G glycoprotein's structure and functional relationship with F. Together, these observations suggest fusion is dependent on a specific interaction between the F and G glycoproteins of the henipaviruses. Further, receptor binding induces measurable changes in the G glycoprotein that appear to be greatest in respect to the interactions between the pairs of dimers comprising its native tetrameric structure. These receptor-induced conformational changes may be associated with the G glycoprotein's promotion of the fusion activity of F.  相似文献   

16.
SARS-CoV entry is mediated by spike glycoprotein. During the viral and host cellular membrane fusion, HR1 and HR2 form 6-helix bundle, positioning the fusion peptide closely to the C-terminal region of ectodomain to drive apposition and subsequent membrane fusion. Connecting to the HR2 region is a Trp-rich region which is absolutely conserved in members of coronaviruses. To investigate the importance of Trp-rich region in SARS-CoV entry, we produced different mutated S proteins using Alanine scan strategy. SARS-CoV pseudotyped with mutated S protein was used to measure viral infectivity. To restore the aromaticity of Ala-mutants, we performed rescue experiments using phenylalanine substitutions. Our results show that individually substituted Ala-mutants substantially decrease infectivity by >90%, global Ala-mutants totally abrogated infectivity. In contrast, Phe-substituted mutants are able to restore 10-25% infectivity comparing to the wild-type. The results suggest that the Trp-rich region of S protein is essential for SARS-CoV infectivity.  相似文献   

17.
The zoonotic transmission of highly pathogenic coronaviruses into the human population is a pressing concern highlighted by the ongoing SARS-CoV-2 pandemic. Recent work has helped to illuminate much about the mechanisms of SARS-CoV-2 entry into the cell, which determines host- and tissue-specific tropism, pathogenicity, and zoonotic transmission. Here we discuss current findings on the factors governing SARS-CoV-2 entry. We first reviewed key features of the viral spike protein (S) mediating fusion of the viral envelope and host cell membrane through binding to the SARS-CoV-2 receptor, angiotensin-converting enzyme 2. We then examined the roles of host proteases including transmembrane protease serine 2 and cathepsins in processing S for virus entry and the impact of this processing on endosomal and plasma membrane virus entry routes. We further discussed recent work on several host cofactors that enhance SARS-CoV-2 entry including Neuropilin-1, CD147, phosphatidylserine receptors, heparan sulfate proteoglycans, sialic acids, and C-type lectins. Finally, we discussed two key host restriction factors, i.e., interferon-induced transmembrane proteins and lymphocyte antigen 6 complex locus E, which can disrupt SARS-CoV-2 entry. The features of SARS-CoV-2 are presented in the context of other human coronaviruses, highlighting unique aspects. In addition, we identify the gaps in understanding of SARS-CoV-2 entry that will need to be addressed by future studies.  相似文献   

18.
The severe acute respiratory syndrome coronavirus (SARS-CoV) envelope spike (S) glycoprotein, a class I viral fusion protein, is responsible for the fusion between the membranes of the virus and the target cell. The S2 domain of protein S has been suggested to have two fusion peptides, one located at its N-terminus, downstream of the furin cleavage, and another, more internal, located immediately upstream of the HR1. Therefore, we have carried out a study of the binding and interaction with model membranes of a peptide corresponding to segment 873-888 of the SARS-CoV S glycoprotein, peptide SARS IFP, as well as the structural changes taking place in both the phospholipid and the peptide induced by the binding of the peptide to the membrane. We demonstrate that SARS IFP peptide binds to and interacts with phospholipid model membranes and shows a higher affinity for negatively charged phospholipids than for zwitterionic ones. SARS IFP peptide specifically decreases the mobility of the phospholipid acyl chains of negatively charged phospholipids and adopts different conformations in the membrane depending upon their composition. These data support its role in SARS-mediated membrane fusion and suggest that the regions where this peptide resides might assist the fusion peptide and/or the pretransmembrane segment of the SARS-CoV spike glycoprotein in the fusion process.  相似文献   

19.
The spike (S) glycoprotein of coronaviruses mediates viral entry into host cells. It is a type 1 viral fusion protein that characteristically contains two heptad repeat regions, denoted HR-N and HR-C, that form coiled-coil structures within the ectodomain of the protein. Previous studies have shown that the two heptad repeat regions can undergo a conformational change from their native state to a 6-helix bundle (trimer of dimers), which mediates fusion of viral and host cell membranes. Here we describe the biophysical analysis of the two predicted heptad repeat regions within the severe acute respiratory syndrome coronavirus S protein. Our results show that in isolation the HR-N region forms a stable alpha-helical coiled coil that associates in a tetrameric state. The HR-C region in isolation formed a weakly stable trimeric coiled coil. When mixed together, the two peptide regions (HR-N and HR-C) associated to form a very stable alpha-helical 6-stranded structure (trimer of heterodimers). Systematic peptide mapping showed that the site of interaction between the HR-N and HR-C regions is between residues 916-950 of HR-N and residues 1151-1185 of HR-C. Additionally, interchain disulfide bridge experiments showed that the relative orientation of the HR-N and HR-C helices in the complex was antiparallel. Overall, the structure of the hetero-stranded complex is consistent with the structures observed for other type 1 viral fusion proteins in their fusion-competent state.  相似文献   

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