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1.
重组人可溶性CD14在昆虫细胞表达系统中的表达   总被引:4,自引:0,他引:4  
BAC-TO-BAC杆状病毒表达系统是一种快速、高效、便捷的表达系统.将人可溶性CD14(sCD14)基因克隆入pFASTBAC1转移质粒中,重组质粒转化DH10BAC感受态细胞,目的基因通过同源重组插入BacmidDNA中,后者转染sf21昆虫细胞获得重组杆状病毒.利用重组蛋白C-末端的6×His@Tag,经TALON金属螯合色谱将重组病毒感染昆虫细胞获得的无血清培养上清--步纯化得到重组蛋白,计算表明从1L培养基中可纯化到约8mg纯度大于95%的重组sCD14蛋白,免疫印迹结果表明重组蛋白具有与抗6×His单抗和抗CD14单抗结合的抗原性.疑胶迁移实验和细胞活性实验表明重组sCD14蛋白能在体外与LPS结合,并能增强LPS诱导THP-1细胞产生细胞毒性因子.  相似文献   

2.
将汉滩病毒囊膜糖蛋白G1与核蛋白(NP)部分片段以不同方式拼 接,构建G1S0.7或S0.7G1嵌合基因,分别插入杆状病毒表达载体pFBD,转化DH10Bac致敏菌, 获得含有嵌合基因的重组穿梭质粒Bacmid,用其转染Sf9细胞,快速筛选出含有G1S0.7或S0.7 G1嵌合 基因的重组杆状病毒,在昆虫细胞中表达外源融合蛋白.利用间接免疫荧光、ELISA和免疫 印迹对表达产物进行检测.结果表明,含G1S0.7嵌合基因之重组杆状病毒可在昆虫细胞中表 达出融合蛋白,该蛋白可被抗汉滩病毒核蛋白及糖蛋白G1特异性单抗所识别,其分子量约97 kD;含S0.7G1嵌合基因之重组杆状病毒在昆虫细胞中表达的融合蛋白,只能被抗汉滩病毒核 蛋白特异性单抗所识别,其分子量约43kD.上述结果提示,G1S0.7嵌合基因可能在昆虫细胞 中表达出完整的具有生物学活性的融合蛋白,S0.7G1嵌和基因的昆虫细胞表达产物不完整 ,且生物学活性不如G1S0.7嵌合基因的表达产物.  相似文献   

3.
【目的】利用杆状病毒表达系统表达诺如病毒(GenegroupⅡ)VP2蛋白,分析其亚细胞定位,为深入研究VP2蛋白的功能奠定基础。【方法】设计可扩增完整ORF3基因片段的引物P1和P2,在下游引物中引入6×His标签的编码序列,从质粒pMD-ORF3中克隆了含有6×His编码序列的ORF3基因,与pFastBac1载体连接,构建重组质粒pFB-ORF3,转化DH10Bac感受态细胞获得重组杆状病毒基因组Bac-ORF3,脂质体介导转染sf9昆虫细胞获得表达VP2蛋白的重组杆状病毒Ac-VP2,感染sf9细胞后,收集病变细胞,采用抗6×His标签的单克隆抗体作为一抗进行Western blot与间接免疫荧光实验鉴定。【结果】Western blot实验证实Ac-VP2感染的sf9细胞在约29 kD处出现特异性条带;间接免疫荧光实验证实Ac-VP2感染的sf9细胞出现特异性绿色荧光,并且VP2主要定位于sf9的细胞核与细胞膜。【结论】诺如病毒VP2蛋白在Ac-VP2感染的sf9细胞中获得成功表达,并且主要定位于sf9细胞的细胞核与细胞膜。  相似文献   

4.
罗雯  徐志凯等 《Virologica Sinica》2002,17(3):226-229,F003
将汉滩病毒囊膜糖蛋白G1与核蛋白 (NP)部分片段以不同方式拼接 ,构建G1S0 .7或S0 .7G1嵌合基因 ,分别插入杆状病毒表达载体 pFBD ,转化DH10Bac致敏菌 ,获得含有嵌合基因的重组穿梭质粒Bacmid ,用其转染Sf9细胞 ,快速筛选出含有G1S0 .7或S0 .7G1嵌合基因的重组杆状病毒 ,在昆虫细胞中表达外源融合蛋白。利用间接免疫荧光、ELISA和免疫印迹对表达产物进行检测。结果表明 ,含G1S0 .7嵌合基因之重组杆状病毒可在昆虫细胞中表达出融合蛋白 ,该蛋白可被抗汉滩病毒核蛋白及糖蛋白G1特异性单抗所识别 ,其分子量约 97kD ;含S0 .7G1嵌合基因之重组杆状病毒在昆虫细胞中表达的融合蛋白 ,只能被抗汉滩病毒核蛋白特异性单抗所识别 ,其分子量约 4 3kD。上述结果提示 ,G1S0 .7嵌合基因可能在昆虫细胞中表达出完整的具有生物学活性的融合蛋白 ,S0 .7G1嵌和基因的昆虫细胞表达产物不完整 ,且生物学活性不如G1S0 .7嵌合基因的表达产物  相似文献   

5.
通过逆转录-聚合酶链反应(RT-PCR)从丙肝患者的血清中分离出编码完整HCV核心蛋白(C区)的cDNA片段,并将其克隆到杆状病毒转移质粒中。重组转移质粒DNA与线性的杆状病毒DNA共转染Sf9昆虫细胞,经蚀斑筛选获得了带编码全部核心蛋白基因的重组杆状病毒。重组病毒感染细胞后表达HCV核心蛋白,其分子量的为20kD。免疫印染和酶联免疫实验表明,此重组蛋白能被人HCV阳性血清所识别。动物实验表明此重组蛋白能诱导小鼠产生特异性抗体。  相似文献   

6.
本研究利用Bac-To-Bac杆状病毒表达系统构建重组禽呼肠孤病毒(Avian reovirus,ARV)σC基因的杆状病毒,感染sf9细胞获得表达重组蛋白。首先,将ARVσC基因克隆至pFastBacHTA载体,构建重组供体载体pFσC,将其转化大肠杆菌DHl0Bac感受态细胞,使σC基因整合到Bacmid穿梭载体中,获得重组穿梭载体BacmidσC。通过脂质体介导将其转染到sf9昆虫细胞中,获得重组杆状病毒rBacσC。通过Western Blot、间接免疫荧光试验(IFA)进行检测,结果显示:σC蛋白在重组杆状病毒rBacσC感染的sf9昆虫细胞中获得正确表达,分子质量约为37kD,表达的σC蛋白具有良好的反应活性。  相似文献   

7.
新城疫病毒F蛋白在昆虫细胞中的表达及其融细胞作用   总被引:1,自引:0,他引:1  
用RT-PCR方法扩增出新城疫病毒标准强毒株F48E8的F基因,并将其克隆到pGEM-T载体,命名为pGEM-NDF.鉴定正确后,以BamHI和XbaI双酶切将F基因从pGEM-NDF中释放出来,并插入到pFast Bac I载体中,得到重组转移载体pFast-NDF.然后将该重组质粒转入含有穿梭质粒的感受态DH10Bac中,通过转座作用获得重组穿梭质粒reBacmid-NDF.再用reBacmid-NDF转染Sf9昆虫细胞,获得含有新城疫病毒F48E8株F基因的重组杆状病毒.间接免疫荧光和Western-blot分析结果表明F蛋白在昆虫细胞中获得表达,而且主要表达于细胞膜上,并使感染重组杆状病毒的昆虫细胞在96h发生融合作用.动物试验表明,表达的F蛋白能够产生中和抗体.本文的研究结果为F蛋白的进一步开发奠定了基础.  相似文献   

8.
对虾白斑综合征病毒厦门分离株ORF220编码真核生物GP130受体同源蛋白.将ORF220和绿色荧光蛋白编码基因融合在一起克隆到昆虫杆状病毒表达载体pFastBacI,然后与AcBacmid共同转染DH10B细胞.用PCR鉴定含有ORF220和EGFP基因的重组质粒,提取纯化重组质粒并转染昆虫细胞进行表达.结果发现,DNA转染后3-5d可以在荧光显微镜下观察到绿色荧光,表明融合蛋白在昆虫系统内成功表达.用病毒上清液感染昆虫细胞进行时相观察,结果表明,ORF220蛋白在昆虫细胞的细胞质和细胞核内呈随机分布,没有特异的细胞定位.  相似文献   

9.
在粉纹夜蛾(Trichoplusia ni)细胞Tn-5B1-4中,高效表达了来自粉纹夜蛾细胞Tn-5B1-4能够抑制细胞凋亡的TnIAP蛋白.聚丙烯酰胺凝胶电泳和免疫印迹分析表明,表达的重组TnIAP只有少部分是可溶性蛋白,大部分以不溶的形式存在.这一结果与以往在昆虫细胞中往往表达出可溶性蛋白不同.活性实验表明,可溶的重组TnIAP能够直接抑制caspase-9酶解Ac-LEHD-AFC的活性,也能抑制caspase-9激活HEK293细胞抽提物酶解Ac-DEVD-AFC的活性.结果进一步证明,昆虫和哺乳动物的细胞凋亡分子机制在进化上是极为保守的.  相似文献   

10.
目的:检测制备的7株抗磷脂酰肌醇蛋白聚糖3(GPC3)蛋白C端单克隆抗体是否具有辅助杀伤肝癌细胞的活性,并研究其识别的抗原表位。方法:用细胞增殖法检测制备的抗体是否具有抗体依赖细胞介导的细胞毒性(ADCC)活性;用生物信息软件分析GPC3蛋白C端(359~580残基)的结构及抗原特征,并据此将其分为4个截短片段,将克隆的各基因片段分别连接到原核表达载体pGEX-4T-1中,进行蛋白表达和纯化,用间接ELISA和Western印迹分析GPC3C端单克隆抗体的表位识别情况。结果与结论:制备的7株单克隆抗体对肝癌细胞HepG2均具有不同程度的辅助杀伤作用,其中5号单克隆抗体的辅助杀伤效果最好;表达并纯化了GPC3C端4个截短片段的重组蛋白;间接ELISA和Western印迹检测结果表明,7株抗体均特异性结合GPC3蛋白的473~525残基区段。  相似文献   

11.
Posttranslational processing and subcellular localization of the HCV core protein are critical steps involved in the assembly of hepatitis C virus (HCV). In this study, both of these events were investigated by in vitro translation and transient COS-1 cell transfection of core protein expression constructs. Mutations at amino acid residues 173 to 174 and 191 to 192 disrupted processing events at the two putative cleavage sites in the C-terminal hydrophobic region of the core protein, indicating that these residues are implicated in the pathway of core protein maturation. As a result, two forms of core protein, C173 and C191, were detected by immunoblotting. Indirect immunofluorescence experiments showed that core proteins C173 and C191, when produced from HCV full-length protein or various polyprotein precursors, displayed a cytoplasmic localization. The C173 species, however, was translocated to the nucleus when expressed in the absence of C191. These findings indicate that preferential cleavage may occur during core protein maturation and that the association of the C191 with the C173 species may contribute to the distinct subcellular distribution of core protein. This may provide a possible mechanism for the control of the diverse biological functions of core protein during HCV replication and assembly.  相似文献   

12.
Circulating ‘free’ non-enveloped Hepatitis C virus (HCV) core protein has been demonstrated in HCV-infected patients, and HCV subgenomes with deletions of the envelope proteins have been previously identified. Initial studies from our laboratory, previously published, indicated that expression of HCV core in insect cells can direct the formation of capsid-like particles lacking the envelope glycoproteins. These protein nanospheres, morphologically similar to natural capsids, were shown to be taken up by human hepatic cells and to produce cell-signalling events. To follow the intracellular fate of these particles we fused the core protein to eGFP. We demonstrate that the chimeric proteins core173-eGFP, eGFP-core191 and eGFP-core173 can be efficiently expressed, self-assembled, and form fluorescent non-enveloped capsid-like particles. By using confocal microscopy and FACS analysis, we provide evidence that the fluorescent nanospheres can not only enter human hepatic cells – the main target of HCV – but also human immune cells such as T and B lymphocytes, as well as human myeloid leukaemia cells differentiated along the monocyte/macrophage-like pathway. The fluorescent particles might thus be used to trace the intracellular trafficking of naked HCV capsids as showed by live microscopy and to further understand their biological significance.  相似文献   

13.
The maturation and subcellular localization of hepatitis C virus (HCV) core protein were investigated with both a vaccinia virus expression system and CHO cell lines stably transformed with HCV cDNA. Two HCV core proteins, with molecular sizes of 21 kDa (p21) and 23 kDa (p23), were identified. The C-terminal end of p23 is amino acid 191 of the HCV polyprotein, and p21 is produced as a result of processing between amino acids 174 and 191. The subcellular localization of the HCV core protein was examined by confocal laser scanning microscopy. Although HCV core protein resided predominantly in the cytoplasm, it was also found in the nucleus and had the same molecular size as p21 in both locations, as determined by subcellular fractionation. The HCV core proteins had different immunoreactivities to a panel of monoclonal antibodies. Antibody 5E3 stained core protein in both the cytoplasm and the nucleus, C7-50 stained core protein only in the cytoplasm, and 499S stained core protein only in the nucleus. These results clearly indicate that the p23 form of HCV core protein is processed to p21 in the cytoplasm and that the core protein in the nucleus has a higher-order structure different from that of p21 in the cytoplasm. HCV core protein in sera of patients with HCV infection was analyzed in order to determine the molecular size of genuinely processed HCV core protein. HCV core protein in sera was found to have exactly the same molecular weight as the p21 protein. These results suggest that p21 core protein is a component of native viral particles.  相似文献   

14.
Hepatitis C Virus (HCV) has been identified as the major causative agent of non-A, non-B hepatitis. Core protein is not only a capsid protein of HCV but also a regulator of cellular functions, and plays an important role in the pathogenesis of HCV. Core protein is produced as an innate form (amino acids [a.a.] 1-191), and following processing produces a mature form (a.a. 1-173). This study demonstrates that the innate form regulates subcellular localization of the mature form, and that the innate form in the cytoplasm enhances p21 expression; on the other hand, the mature form in the nucleus suppresses p21 expression. These observations suggest that the innate form is not only a precursor of the mature form but also a regulator of the localization and functions of core protein.  相似文献   

15.
A protein factor named S-II that stimulates RNA polymerase II was previously purified from Ehrlich ascites tumor cells [1]. In this work using an antibody prepared against purified S-II, the localization of S-II in the cell was investigated by an indirect immunofluorescence technique. In 3T3 cells, specific immunofluorescence was detected only in the nucleoplasm where RNA polymerase II is located, and not in the nucleoli where RNA polymerase I is present. In Ehrlich ascites tumor cells fluorescence was detected mainly in the nucleoplasm, although some fluorescence was also detectable in the cytoplasm, possibly due to leak of S-II from the nuclei during preparation of the immunofluorescent samples. In metaphase cells fluorescent was not found on chromosomes but throughout the cytoplasm. These findings suggest that S-II is a nuclear protein and that it spreads into the cytoplasm without being attached to chromosomes in metaphase, but is reassembled into the nucleoplasm in the interphase. Specific immunofluorescence was also detected in the nuclei of HeLa cells and salivary glands cells of flesh-fly larvae, suggesting that the nucleoplasm of these heterologous cells contains proteins immunologically cross-reactive with the antibody against S-II.  相似文献   

16.
HeLa、HEK293、SH-SY5Y细胞中的Tau蛋白   总被引:3,自引:0,他引:3  
通过间接免疫荧光测定了HeLa、HEK-293、SH-SY5Y细胞内Tau蛋白的分布,观察到在细胞间期单克隆抗体Tau-1的荧光信号分布于细胞质和胞核中.特别是HeLa细胞,其胞核内具有相对较高的Tau蛋白免疫荧光信号.通过分离SH-SY5Y的细胞核,更为清楚地显示了Tau蛋白在细胞核中的分布,并且免疫荧光信号与DNA的Hoechst33258染色信号相重合.Western blotting的测定结果进一步证明了SH-SY5Y细胞的胞质和胞核中均含有Tau蛋白的不同异构体.以上结果提示,Tau蛋白不仅存在于神经、肌肉等细胞内,也存在于肿瘤细胞系,并且分布于间期的胞核中.  相似文献   

17.
We cloned the hamster cdc25C cDNA by using the human cdc25C cDNA as a probe and prepared an antibody to Escherichia coli-produced hamster cdc25C protein that is specific to the human cdc25C protein. The microinjected antibody inhibited a chromosome condensation induced by tsBN2 mutation, indicating that the cdc25C protein is required for an activation of p34cdc2 kinase caused by loss of RCC1 function. The hamster cdc25C protein located in the cytoplasm, prominently in a periphery of the nuclei of cells arrested with hydroxyurea, and seemed to move into the nuclei by loss of RCC1 function. Also, we found a molecular shift of the cdc25C protein in cells showing premature chromosome condensation (PCC), in addition to normal mitotic cells. This molecular-shift appeared depending on an activation of p34cdc2 kinase.  相似文献   

18.
Japanese encephalitis virus (JEV) core protein was detected in both the nucleoli and cytoplasm of mammalian and insect cell lines infected with JEV or transfected with the expression plasmid of the core protein. Mutation analysis revealed that Gly(42) and Pro(43) in the core protein are essential for the nuclear and nucleolar localization. A mutant M4243 virus in which both Gly(42) and Pro(43) were replaced by Ala was recovered by plasmid-based reverse genetics. In C6/36 mosquito cells, the M4243 virus exhibited RNA replication and protein synthesis comparable to wild-type JEV, whereas propagation in Vero cells was impaired. The mutant core protein was detected in the cytoplasm but not in the nucleus of either C6/36 or Vero cell lines infected with the M4243 virus. The impaired propagation of M4243 in mammalian cells was recovered by the expression of wild-type core protein in trans but not by that of the mutant core protein. Although M4243 mutant virus exhibited a high level of neurovirulence comparable to wild-type JEV in spite of the approximately 100-fold-lower viral propagation after intracerebral inoculation to 3-week-old mice of strain Jcl:ICR, no virus was recovered from the brain after intraperitoneal inoculation of the mutant. These results indicate that nuclear localization of JEV core protein plays crucial roles not only in the replication in mammalian cells in vitro but also in the pathogenesis of encephalitis induced by JEV in vivo.  相似文献   

19.
The ribosomal "stalk" structure is a distinct lateral protuberance located on the large ribosomal subunit in prokaryotic, as well as in eukaryotic cells. In eukaryotes, this ribosomal structure is composed of the acidic ribosomal P proteins, forming two hetero-dimers (P1/P2) attached to the ribosome through the P0 protein. The "stalk" is essential for the ribosome activity, taking part in the interaction with elongation factors.In this report, we have shown that the subcellular distribution of the human P proteins does not fall into standard behavior of regular ribosomal proteins. We have used two approaches to assess the distribution of the P proteins, in vivo experiments with GFP fusion proteins and in vitro one with anti-P protein antibodies. In contrast to standard r-proteins, the P1 and P2 proteins are not actively transported into the nucleus compartment, remaining predominantly in the cytoplasm (the perinuclear compartment). The P0 protein was found in the cytoplasm, as well as in the nucleus; however, the nucleoli were excluded. This protein was scattered around the nuclei, and the distribution might reflect association with the so-called nuclear bodies. This is the first example of r-proteins that are not actively transported into the nucleus; moreover, this might imply that the "stalk" constituents are assembled onto the ribosomal particle at the very last step of ribosomal maturation, which takes part in the cell cytoplasm.  相似文献   

20.
The herpes simplex virus type 1 (HSV-1) UL6, UL15, and UL28 proteins are essential for cleavage of replicated concatemeric viral DNA into unit length genomes and their packaging into a preformed icosahedral capsid known as the procapsid. The capsid-associated UL6 DNA-packaging protein is located at a single vertex and is thought to form the portal through which the genome enters the procapsid. The UL15 protein interacts with the UL28 protein, and both are strong candidates for subunits of the viral terminase, a key component of the molecular motor that drives the DNA into the capsid. To investigate the association of the UL6 protein with the UL15 and UL28 proteins, the three proteins were produced in large amounts in insect cells with the baculovirus expression system. Interactions between UL6 and UL28 and between UL6 and UL15 were identified by an immunoprecipitation assay. These results were confirmed by transiently expressing wild-type and mutant proteins in mammalian cells and monitoring their distribution by immunofluorescence. In cells expressing the single proteins, UL6 and UL15 were concentrated in the nuclei whereas UL28 was found in the cytoplasm. When the UL6 and UL28 proteins were coexpressed, UL28 was redistributed to the nuclei, where it colocalized with UL6. In cells producing either of two cytoplasmic UL6 mutant proteins and a functional epitope-tagged form of UL15, the UL15 protein was concentrated with the mutant UL6 protein in the cytoplasm. These observed interactions of UL6 with UL15 and UL28 are likely to be of major importance in establishing a functional DNA-packaging complex at the portal vertex of the HSV-1 capsid.  相似文献   

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