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1.
副粘病毒(Paramyxovirus)包膜上镶嵌着两种糖蛋白血凝素-神经氨酸酶(Hemagglutinin-neuraminidase,HN)和融合蛋白(Fusion protein,F),两者的相互作用是决定病毒宿主范围、毒力和传播的关键。为探讨HN颈部与F相互作用区(Fusion interaction region,FIR)在膜融合机制中的作用,选取新城疫病毒(Newcastle disease virus,NDV)与人副流感病毒3型(human parainfluenza virus type 3,hPIV3)为研究对象,通过片段置换及同源重组技术构建嵌合体C1、C2,进一步将NDV及hPIV3 HN的FIR内第51位丝氨酸(Serine,S)、第55位天冬氨酸(Aspartic acid,D)定点突变为丙氨酸(Alanine,A),获得突变体NDVS51A、NDVD55A、hPIV3 S51A、hPIV3 D55A,对嵌合体及突变体蛋白的细胞表面表达效率、受体识别活性、神经氨酸酶活性、促细胞融合活性及半融合活性进行检测。结果:各嵌合体C1、C2及突变体NDV S51A、NDV D55A、hPIV3 S51A、hPIV3 D55A的细胞表达效率、神经氨酸酶活性(Neuraminidase,NA)与野生型相比差异不显著(P0.05),但促细胞融合活性均有不同程度的降低(P0.05),C1、C2、NDV S51A、NDV D55A、hPIV3 S51A、hPIV3 D55A分别为野生型的7%、9%、27%、19%、17%和21%;C1、C2、NDV S51A、NDV D55A、hPIV3 S51A、hPIV3 D55A的受体识别活性分别为14.7%、22.3%、35.5%、28.8%、33.9%和40.2%,与野生型相比差异显著(P0.05)。结果表明:副粘病毒HN蛋白颈部与F相互作用区的突变及置换使HN蛋白的促细胞融合活性、受体识别活性降低,其中第51位丝氨酸(S51)及第55位天冬氨酸(D55)发挥重要作用。  相似文献   

2.
为了确定新城疫病毒融合蛋白(F)分子上活性位点中保守氨基酸在F蛋白的细胞融合作用,弄清F细胞融合的分子机理,采用基因定点突变法,创造一个酶切位点,用酶切反应初步筛选突变株,然后用DNA序列分析进一步确定,并于真核细胞内进行表达,Giemsa染色定性和指示基因法定量检测细胞融合功能,荧光强度分析(FACS)检测表达效率情况。结果表明,NDV F第117位苯丙氨酸(F)突变成亮氨酸(L)时对细胞融合作用没有显著影响。R112和K115同为保守序列,分别突变为G时,细胞融合活性只有原来的44%,下降了56%。细胞表面表达效率没有明显的改变。N147突变为K时,细胞融合活性明显下降,只有原来的15%,而细胞表面表达效率没有明显的改变。L154为保守序列,突变为K时,细胞融合活性消失,说明L154是一个非常关键的氨基酸,对维持F蛋白的细胞融合活性非常重要。细胞表面表达效率也有所下降(为原来的94%)。D462属于高度保守氨基酸,当突变为N时,细胞融合活性消失,但经细胞表面表达效率分析证明,此突变蛋白未表达于细胞表面,证明在细胞浆转运至细胞表面的过程中发生了问题。当突变为R和E时,细胞融合活性未发生改变,但细胞表面表达效率有所下降,分别为野毒株的63%和44%。说明NDV F分子上与HN相互作用的特异性区域中的某些保守氨基酸在细胞融合中发挥着重要作用,对F蛋白的折叠、加工、转运等,发挥着不同作用,从而影响F蛋白的细胞融合作用和/或在细胞表面的表达量。  相似文献   

3.
新城疫病毒ZJ1毒株是近年来在我国水禽中流行并能引起水禽严重发病和死亡的强毒株,其F蛋白裂解位点有多个碱性氨基酸分布。将该毒株F蛋白裂解位点的112、115和117位碱性氨基酸突变成弱毒株特征的非碱性氨基酸,构建了重组表达质粒pCI-FT。分别将突变前后的F蛋白与该毒株的HN蛋白在COS-1细胞共表达,表明突变前后的F蛋白均有融合活性;分别将突变前后的F蛋白与该毒株的HN蛋白在CEF细胞共表达,表明突变后F蛋白被裂解的活性大大降低。以上研究为下一步在全长cDNA克隆水平上对F蛋白裂解位点氨基酸序列进行相应  相似文献   

4.
新城疫病毒HN和F基因遗传变异相关性的研究   总被引:19,自引:2,他引:19  
选取国内1999~2005年发生的NDV毒株,经CEF蚀斑纯化和SPF鸡胚增殖,对其融合蛋白(F)和血凝素-神经氨酸酶(HN)基因分别进行克隆测序,结合在GenBank中发表的具有F和HN基因的NDV序列,利用DNAStar软件,对其不同毒株的F或HN基因片段和全长、F和HN基因全长分别进行遗传变异的研究,利用统计学软件SPSS8.0进行同源性相关分析。结果表明:不同NDV毒株F或HN基因片段与其全长之间,核甘酸r≥0.973,氨基酸:0.911≤r≤0.968,遗传变异高度相关,但F与HN基因全长之间核甘酸的遗传变异呈现弱相关(r=0.312)。国内NDV野毒株之间HN核甘酸高度同源(同源率97%以上),而与La Sota同源率仅为79.2%~80.7%,且显示出明显的地域性。  相似文献   

5.
为了研究人副流感病毒3型(hPIV3)HN糖蛋白N-糖链的功能,采用基因定点突变技术构建糖基化位点突变体,然后检测各突变株的蛋白电泳速率、细胞表面表达量、受体结合活性、神经氨酸酶活性和促细胞融合活性。HN分子的G1、G2、G3和G4 4个糖基化位点分别和联合突变后发现G1、G2和G4及其联合突变株(G12、G14、G24和G124)电泳速率加快,而G3突变株电泳速率没有变化。各突变株的表达效率,神经氨酸酶活性与野毒株相比差别无统计学意义(P>0.05),但受体结合活性和促细胞融合活性均有不同程度的降低(P<0.05)。G1、G2和G4位点突变后受体结合活性分别为突变前的83.94%、76.45%和55.32%,而促细胞融合活性降为突变前的80.84%、77.83%和64.16%。联合突变株G12、G14、G24和G124血吸附活性进一步降低,为突变前的33.07%、20.67%、19.96%和15.11%,促细胞融合活性进一步降低为突变前的46.36%、12.04%、13.43%和4.05%。结果表明:hPIV3HN糖蛋白的糖链对HN糖蛋白的受体结合活性和促细胞融合活性有重要影响,推断糖链的丢失可能会引起HN糖蛋白头部结构(受体结合活性位点所在区域)或者方向的改变或者无法与宿主细胞膜表面的凝集素受体(一种与N-糖链结合的受体)结合,进而导致受体结合活性和促细胞融合活性的降低。  相似文献   

6.
糖化作用对新城疫病毒HN糖蛋白功能的影响   总被引:9,自引:2,他引:9  
为了研究糖化作用对新城疫病毒(NDV)HN糖蛋白生物学活性的影响,特别是对HN促细胞融合作用的影响,采用基因定点突变技术分别去掉HN分子上的4个糖化位点,然后检测各突变株的细胞表面表达情况、受体识别特性、神经氨酸酶活性、促细胞融合作用、免疫沉淀特性等.结果表明,将野毒株NDV HN的细胞表面表达效率定为100%时,D198R-HN突变株的表达效率为82.6%;而对二者的G1、G2、G3和G4 4个糖化位点分别进行定点突变时,得到8种突变株.它们的表达效率均有不同程度的降低,D198R-HN-G2和D198R-HN-G4两种突变株与D198R-HN相比更为明显.野毒株HN的G1、G2、G3和G4突变株的受体识别活性分别为突变前的47.95%、68.49%、42.67%和41.10%;而D198R-HN突变株的G1、G3和G4突变株的受体识别活性突变前后变化不明显,只有D198R-HN-G2突变株的受体识别活性得以恢复较多,从原来的10.96%恢复到32.88%.野毒株HN突变后神经氨酸酶活性普遍降低,尤以G4影响明显,仅为野毒株的9.60%;而D198R-HN突变株突变后神经氨酸酶活性普遍升高,尤以G2恢复最高,由原来的0.45%恢复到7.59%.野毒株HN的G1、G2、G3和G4突变前后细胞融合情况变化不大;而D198R-HN的G1、G2、G3和G4突变后,D198R-HN-G1、D198R-HN-G3、D198R-HN-G4没有变化,但D198R-HN-G2使D198R-HN的细胞融合活性得以恢复30.90%.野毒株HN电泳时呈现1条较宽的泳带,当突变掉1个糖化位点时,泳动速度加快.D198R-HN突变株及D198R-HN-G1、D198R-HN-G3和D198R-HN-G4 HN突变株电泳时,呈现两条模糊不清的条带.但D198R-HN-G2突变株HN电泳时,其条带变得窄而锐利,且泳动速度快.上述结果说明糖链能影响HN的表达或从细胞浆运输到细胞表面,G2对HN的受体识别活性影响较大,推测G2糖链部分结构的改变影响到了HN G2周围的表型特性,从而导致神经氨酸酶活性、促细胞融合作用的改变.  相似文献   

7.
对于NDV不同基因型毒株的HN基因的氨基酸序列比较后发现,基因Ⅶ型的毒株在第65~75位的氨基酸序列较为保守,而其他各基因型在该区域则不尽相同。因此本文克隆了NDV基因Ⅱ、Ⅶ、Ⅸ型的代表毒株La Sota、GX-2、F48E9的含有该区域的序列,并进行蛋白表达,通过特异性抗血清对表达肽段进行抗原性测定。应用表达的蛋白免疫SPF鸡,用ELISA检测各组的抗体水平。结果表明3个毒株在反应原性上存在差异。应用NDV F48E9强毒株攻毒,结果显示各多肽蛋白的保护率不同,表明在该区域这3个毒株之间存在着免疫原性差异。  相似文献   

8.
新城疫病毒ZJ1毒株是近年来在我国水禽中流行并能引起水禽严重发病和死亡的强毒株,其F蛋白裂解位点有多个碱性氨基酸分布。将该毒株F蛋白裂解位点的112、115和117位碱性氨基酸突变成弱毒株特征的非碱性氨基酸,构建了重组表达质粒pCI-FT。分别将突变前后的F蛋白与该毒株的HN蛋白在COS-1细胞共表达,表明突变前后的F蛋白均有融合活性;分别将突变前后的F蛋白与该毒株的HN蛋白在CEF细胞共表达,表明突变后F蛋白被裂解的活性大大降低。以上研究为下一步在全长cDNA克隆水平上对F蛋白裂解位点氨基酸序列进行相应突变,研究毒力相关因素以及构建毒力致弱疫苗株等奠定基础。  相似文献   

9.
鹅源新城疫病毒ZJI株基因组cDNA克隆的序列修饰   总被引:1,自引:0,他引:1  
将鹅源新城疫病毒ZJI株全基因组cDNA克隆通过酶切切下包含T7启动子区域和转录载体的片段,将其自身环化后获得约6.5kb的质粒。设计引物,利用基因定点突变技术,在此质粒上T7启动子与NDV Leader序列之间突变插入额外的3个G碱基,将此突变最终引入到原基因组cDNA克隆中。应用RT—PCR技术从尿囊液中扩增NDV基因组F/HN基因区域部分片段,利用限制性内切酶BsmBI将扩增片段连接,最终将原cDNA克隆中相应片段替换下。测序结果表明,原基因组cDNA克隆中特定位置碱基插入突变成功,F/HN基因区域碱基突变均得以纠正。以上cDNA克隆的修饰与替换为该毒株的反向遗传研究打下了基础。  相似文献   

10.
巩艳艳  崔治中 《中国科学C辑》2009,39(12):1175-1180
本实验研究了抗体免疫选择压对新城疫病毒(NDV)HN基因和F基因变异的影响。将NDV野毒株TZ060107分别接种到含有抗NDV的单因子血清(A组)与不含抗体的(B组)鸡胚成纤维细胞中连续传代,每组设3个独立的传代系列。分别对第10,20,30,40,50代病毒的HN和F基因进行扩增克隆测序。序列比较结果显示,有抗体A组HN基因发生突变的位点数明显多于无抗体B组,且非同义突变(NS)与同义突变(S)比值NS/S为6,明显高于无抗体B组NS/S的3.4。在有抗体A组有5个碱基位点发生稳定的非同义突变,而且其中3个(aa#353,521和568)与已知的抗原表位密切相关。F基因在有抗体A组也出现2个稳定的非同义突变,无抗体B组没有产生稳定变异。但不论在有抗体A组还是无抗体B组,F基因变异的NS/S比均小于2.5。本研究表明,抗体免疫选择压可显著影响HN基因变异,但对F基因变异的影响小于HN基因。  相似文献   

11.
副粘病毒融合蛋白活性位点中亮氨酸基因突变分析   总被引:7,自引:3,他引:7  
王志玉 《病毒学报》2000,16(1):12-16
为了确定副粘病毒融合蛋白(F)分子上活性位点中亮氨酸在F的细胞融合作用中的作用,弄清F融合细胞的分子机理,采用基因定点突变法创造一个酶切位点,用酶切反应初步筛选突变株,然后用DNA序列分析进一步确定,并在真核细胞内进行表达,Giemsa染色和指示基因法检测细胞融合功能,荧光强度分析(FACS)检测表达效率。结果表明,hPIV3等460位亮氨酸(L)和第474位异亮氨酸(I)分别突变成丙氨酸(A)(  相似文献   

12.
Gravel KA  Morrison TG 《Journal of virology》2003,77(20):11040-11049
The activation of most paramyxovirus fusion proteins (F proteins) requires not only cleavage of F(0) to F(1) and F(2) but also coexpression of the homologous attachment protein, hemagglutinin-neuraminidase (HN) or hemagglutinin (H). The type specificity requirement for HN or H protein coexpression strongly suggests that an interaction between HN and F proteins is required for fusion, and studies of chimeric HN proteins have implicated the membrane-proximal ectodomain in this interaction. Using biotin-labeled peptides with sequences of the Newcastle disease virus (NDV) F protein heptad repeat 2 (HR2) domain, we detected a specific interaction with amino acids 124 to 152 from the NDV HN protein. Biotin-labeled HR2 peptides bound to glutathione S-transferase (GST) fusion proteins containing these HN protein sequences but not to GST or to GST containing HN protein sequences corresponding to amino acids 49 to 118. To verify the functional significance of the interaction, two point mutations in the HN protein gene, I133L and L140A, were made individually by site-specific mutagenesis to produce two mutant proteins. These mutations inhibited the fusion promotion activities of the proteins without significantly affecting their surface expression, attachment activities, or neuraminidase activities. Furthermore, these changes in the sequence of amino acids 124 to 152 in the GST-HN fusion protein that bound HR2 peptides affected the binding of the peptides. These results are consistent with the hypothesis that HN protein binds to the F protein HR2 domain, an interaction important for the fusion promotion activity of the HN protein.  相似文献   

13.
The hemagglutinin-neuraminidase (HN) protein of Newcastle disease virus (NDV) plays a crucial role in the process of infection. However, the exact contribution of the HN gene to NDV pathogenesis is not known. In this study, the role of the HN gene in NDV virulence was examined. By use of reverse genetics procedures, the HN genes of a virulent recombinant NDV strain, rBeaudette C (rBC), and an avirulent recombinant NDV strain, rLaSota, were exchanged. The hemadsorption and neuraminidase activities of the chimeric viruses showed significant differences from those of their parental strains, but heterotypic F and HN pairs were equally effective in fusion promotion. The tissue tropism of the viruses was shown to be dependent on the origin of the HN protein. The chimeric virus with the HN protein derived from the virulent virus exhibited a tissue predilection similar to that of the virulent virus, and vice versa. The chimeric viruses with reciprocal HN proteins either gained or lost virulence, as determined by a standard intracerebral pathogenicity index test of chickens and by the mean death time in chicken embryos (a measure devised to classify these viruses), indicating that virulence is a function of the amino acid differences in the HN protein. These results are consistent with the hypothesis that the virulence of NDV is multigenic and that the cleavability of F protein alone does not determine the virulence of a strain.  相似文献   

14.
The hemagglutinin-neuraminidase (HN) protein of paramyxoviruses carries out three distinct activities contributing to the ability of HN to promote viral fusion and entry: receptor binding, receptor cleavage (neuraminidase), and activation of the fusion protein. The relationship between receptor binding and fusion triggering functions of HN are not fully understood. For Newcastle disease virus (NDV), one bifunctional site (site I) on HN's globular head can mediate both receptor binding and neuraminidase activities, and a second site (site II) in the globular head is also capable of mediating receptor binding. The receptor analog, zanamivir, blocks receptor binding and cleavage activities of NDV HN's site I while activating receptor binding by site II. Comparison of chimeric proteins in which the globular head of NDV HN is connected to the stalk region of either human parainfluenza virus type 3 (HPIV3) or Nipah virus receptor binding proteins indicates that receptor binding to NDV HN site II not only can activate its own fusion (F) protein but can also activate the heterotypic fusion proteins. We suggest a general model for paramyxovirus fusion activation in which receptor engagement at site II plays an active role in F activation.  相似文献   

15.
Virulent and moderately virulent strains of Newcastle disease virus (NDV), representing avian paramyxovirus serotype 1 (APMV-1), cause respiratory and neurological disease in chickens and other species of birds. In contrast, APMV-2 is avirulent in chickens. We investigated the role of the fusion (F) and hemagglutinin-neuraminidase (HN) envelope glycoproteins in these contrasting phenotypes by designing chimeric viruses in which the F and HN glycoproteins or their ectodomains were exchanged individually or together between the moderately virulent, neurotropic NDV strain Beaudette C (BC) and the avirulent APMV-2 strain Yucaipa. When we attempted to exchange the complete F and HN glycoproteins individually and together between the two viruses, the only construct that could be recovered was recombinant APMV-2 strain Yucaipa (rAPMV-2), containing the NDV F glycoprotein in place of its own. This substitution of NDV F into APMV-2 was sufficient to confer the neurotropic, neuroinvasive, and neurovirulent phenotypes, in spite of all being at reduced levels compared to what was seen for NDV-BC. When the ectodomains of F and HN were exchanged individually and together, two constructs could be recovered: NDV, containing both the F and HN ectodomains of APMV-2; and APMV-2, containing both ectodomains of NDV. This supported the idea that homologous cytoplasmic tails and matched F and HN ectodomains are important for virus replication. Analysis of these viruses for replication in vitro, syncytium formation, mean embryo death time, intracerebral pathogenicity index, and replication and tropism in 1-day-old chicks and 2-week-old chickens showed that the two contrasting phenotypes of NDV and APMV-2 could largely be transferred between the two backbones by transfer of homotypic F and HN ectodomains. Further analysis provided evidence that the homologous stalk domain of NDV HN is essential for virus replication, while the globular head domain of NDV HN could be replaced with that of APMV-2 with only a minimal attenuating effect. These results demonstrate that the F and HN ectodomains together determine the cell fusion, tropism, and virulence phenotypes of NDV and APMV-2 and that the regions of HN that are critical to replication and the species-specific phenotypes include the cytoplasmic tail and stalk domain but not the globular head domain.  相似文献   

16.
The promotion of membrane fusion by most paramyxoviruses requires an interaction between the viral attachment and fusion (F) proteins to enable receptor binding by the former to trigger the activation of the latter for fusion. Numerous studies demonstrate that the F-interactive sites on the Newcastle disease virus (NDV) hemagglutinin-neuraminidase (HN) and measles virus (MV) hemagglutinin (H) proteins reside entirely within the stalk regions of those proteins. Indeed, stalk residues of NDV HN and MV H that likely mediate the F interaction have been identified. However, despite extensive efforts, the F-interactive site(s) on the Nipah virus (NiV) G attachment glycoprotein has not been identified. In this study, we have introduced individual N-linked glycosylation sites at several positions spaced at intervals along the stalk of the NiV G protein. Five of the seven introduced sites are utilized as established by a retardation of electrophoretic mobility. Despite surface expression, ephrinB2 binding, and oligomerization comparable to those of the wild-type protein, four of the five added N-glycans completely eliminate the ability of the G protein to complement the homologous F protein in the promotion of fusion. The most membrane-proximal added N-glycan reduces fusion by 80%. However, unlike similar NDV HN and MV H mutants, the NiV G glycosylation stalk mutants retain the ability to bind F, indicating that the fusion deficiency of these mutants is not due to prevention of the G-F interaction. These findings suggest that the G-F interaction is not mediated entirely by the stalk domain of G and may be more complex than that of HN/H-F.  相似文献   

17.
Most paramyxovirus fusion (F) proteins require the coexpression of the homologous attachment (HN) protein to promote membrane fusion, consistent with the existence of a virus-specific interaction between the two proteins. Analysis of the fusion activities of chimeric HN proteins indicates that the stalk region of the HN spike determines its F protein specificity, and analysis of a panel of site-directed mutants indicates that the F-interactive site resides in this region. Here, we use the addition of oligosaccharides to further explore the role of the HN stalk in the interaction with F. N-glycans were individually added at several positions in the stalk to determine their effects on the activities of HN, as well as its structure. N-glycan addition at positions 69 and 77 in the stalk specifically blocks fusion and the HN-F interaction without affecting either HN structure or its other activities. N-glycans added at other positions in the stalk modulate activities that reside in the globular head of HN. This correlates with an alteration of the tetrameric structure of the protein, as indicated by sucrose gradient sedimentation analyses. Finally, N-glycan addition in another region of HN (residues 124 to 152), predicted by a peptide-based analysis to mediate the interaction with F, does not significantly reduce the level of fusion, arguing strongly against this site being part of the F-interactive domain in HN. Our data support the idea that the F-interactive site on HN is defined by the stalk region of the protein.  相似文献   

18.
Paramyxoviruses, including the emerging lethal human Nipah virus (NiV) and the avian Newcastle disease virus (NDV), enter host cells through fusion of the viral and target cell membranes. For paramyxoviruses, membrane fusion is the result of the concerted action of two viral envelope glycoproteins: a receptor binding protein and a fusion protein (F). The NiV receptor binding protein (G) attaches to ephrin B2 or B3 on host cells, whereas the corresponding hemagglutinin-neuraminidase (HN) attachment protein of NDV interacts with sialic acid moieties on target cells through two regions of its globular domain. Receptor-bound G or HN via its stalk domain triggers F to undergo the conformational changes that render it competent to mediate fusion of the viral and cellular membranes. We show that chimeric proteins containing the NDV HN receptor binding regions and the NiV G stalk domain require a specific sequence at the connection between the head and the stalk to activate NiV F for fusion. Our findings are consistent with a general mechanism of paramyxovirus fusion activation in which the stalk domain of the receptor binding protein is responsible for F activation and a specific connecting region between the receptor binding globular head and the fusion-activating stalk domain is required for transmitting the fusion signal.  相似文献   

19.
Interactions between viral glycoproteins, matrix protein and nucleocapsid sustain assembly of parainfluenza viruses at the plasma membrane. Although the protein interactions required for virion formation are considered to be highly specific, virions lacking envelope glycoprotein(s) can be produced, thus the molecular interactions driving viral assembly and production are still unclear. Sendai virus (SeV) and human parainfluenza virus type 1 (hPIV1) are highly similar in structure, however, the cytoplasmic tail sequences of the envelope glycoproteins (HN and F) are relatively less conserved. To unveil the specific role of the envelope glycoproteins in viral assembly, we created chimeric SeVs whose HN (rSeVhHN) or HN and F (rSeVh(HN+F)) were replaced with those of hPIV1. rSeVhHN grew as efficiently as wt SeV or hPIV1, suggesting that the sequence difference in HN does not have a significant impact on SeV replication and virion production. In sharp contrast, the growth of rSeVh(HN+F) was significantly impaired compared to rSeVhHN. rSeVh(HN+Fstail) which expresses a chimeric hPIV1 F with the SeV cytoplasmic tail sequence grew similar to wt SeV or rSeVhHN. Further analysis indicated that the F cytoplasmic tail plays a critical role in cell surface expression/accumulation of HN and F, as well as NP and M association at the plasma membrane. Trafficking of nucelocapsids in infected cells was not significantly affected by the origin of F, suggesting that F cytoplasmic tail is not involved in intracellular movement. These results demonstrate the role of the F cytoplasmic tail in accumulation of structural components at the plasma membrane assembly sites.  相似文献   

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