1.Construction and screening of SARS-CoV S protein-specific phage displayed antigen library.
Rui-Ping WU ; Jia-Zi MENG ; Yu-Xian HE
Chinese Journal of Virology 2013;29(3):280-286
The aim of this study is to construct a SARS-CoV S protein-specific phage displayed antigen library for the epitope characterization of anti-S monoclonal antibodies (mAbs). First, the full-length gene of SARS-S protein was PCR amplified, purified and then digested with DNase I to obtain DNA fragments in the size range of 50-500 bp. The resulting fragments were blunt-end ligated to the modified phage display vector pComb3XSS. The reactions were electrotransformed into XL1-Blue and infected with VCSM13 helper phage. The SARS-CoV S protein-specific phage displayed antigen library was biopanned and screened against two anti-S mAbs, S-M1 and S-M2. The results showed that we successfully constructed the phage displayed antigen library with a size of 5.7 x 10(6). After three-rounds of biopanning, 14 positive phage clones for S-M1 and 15 for S-M2 were respectively identified. Sequence analyses revealed the possible epitopes of two mAbs. Therefore, the S protein-specific phage displayed antigen library provides a crucial platform for the epitope characterization of anti-S antibodies and it is highly valuable for development of SARS vaccines and diagnostics.
Antibodies, Viral
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immunology
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Bacteriophages
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genetics
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metabolism
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Epitopes
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genetics
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immunology
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Humans
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Membrane Glycoproteins
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genetics
;
immunology
;
Peptide Library
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SARS Virus
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genetics
;
immunology
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Severe Acute Respiratory Syndrome
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immunology
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virology
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Spike Glycoprotein, Coronavirus
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Viral Envelope Proteins
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genetics
;
immunology
2.Evaluation of the protection conferred by several avian infectious bronchitis attenuated vaccines against the field strain CK/CH/LDL/97 I in China.
Xiao-Nan ZHAGN ; Yu WANG ; Cheng-Ren LI ; Qiao-Ran LIU ; Zong Xi HAN ; Yu-Hao SHAO ; Sheng-Wang LIU ; Xian-Gang KONG
Chinese Journal of Virology 2008;24(2):111-116
The entire S1 protein gene of five infectious bronchitis (IB) vaccine strains (JAAS, IBN, Jilin, J9, H120) used in China were compared with that of the IB field isolate CK/CH/LDL/97 I present in China. The nucleotide and deduced amino acid similarities between the five IB vaccine strains and the field strain, CK/CH/LDL/97 I, were not more than 76.4% and 78.7%, respectively. Phylogenetic analysis based on the S1 gene showed that the vaccine strains and the field strain belonged to different clusters and had larger evolutionary distances, indicating that they were of different genotypes. The five vaccine strains were used for protection test against challenge of the field isolate CK/CH/LDL/97 I. The chickens inoculated with five vaccine strains showed morbidity as high as 30%-100% after challenged with the CK/CH/ LDL/97 I strain. The organ samples at 5 days post challenge showed that the viral detection rates were 50%-90% and 10%-30% for trachea and kidney, respectively. The live attenuated vaccines only provided partial protection to the vaccinated chickens against heterologous IBV infection, CK/CH/LDL/97 I.
Animals
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Antibodies, Viral
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blood
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Chickens
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virology
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Coronavirus Infections
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prevention & control
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veterinary
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Infectious bronchitis virus
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classification
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genetics
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immunology
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isolation & purification
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Membrane Glycoproteins
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genetics
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Phylogeny
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Poultry Diseases
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prevention & control
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Spike Glycoprotein, Coronavirus
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Vaccines, Attenuated
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immunology
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Viral Envelope Proteins
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genetics
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Viral Vaccines
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immunology
3.Sequencing and Serologic Identification of S1 Genes of Infectious Bronchitis Viruses Isolated during 2012-2013 in Guangxi Province, China.
Lihua ZHANG ; Cuilan WU ; Zhipeng ZHANG ; Yining HE ; Heming LI ; Lili QIN ; Tianchao WEI ; Meilan MO ; Ping WEI
Chinese Journal of Virology 2016;32(1):62-69
We wished to ascertain the prevalence as well as the genetic and antigenic variation of infectious bronchitis viruses (IBVs) circulating in the Guangxi Province of China in recent years. The S1 gene of 15 IBV field isolates during 2012-2013 underwent analyses in terms of the similarity of amino-acid sequences, creation of phylogenetic trees, recombination, and serologic identification. Similarities in amino-acid sequences among the 15 isolates of the S1 gene were 54.3%-99.6%, and 43.3%-99.3% among 15 isolates and reference strains. Compared with the vaccine strain H120, except for GX-YL130025, the other 14 isolates showed a lower similarity of amino-acid sequences of the S1 gene (65.1-81.4%). Phylogenetic analyses of the S1 gene suggested that 15 IBV isolates were classified into eight genotypes, with the predominant genotype being new-type II. Recombination analyses demonstrated that the S1 gene of the GX-NN130048 isolate originated from recombination events between vaccine strain 4/91 and a LX4-like isolate. Serotyping results suggested that seven serotypes prevailed during 2012-2013 in Guangxi Province, and that only one isolate was consistent with the vaccine strain H120 in serotype (which has been used widely in recent years). The serotype of recombinant isolate GX-NN130048 was different from those of its parent strains. These results suggested that not only the genotype, but also the serotype of IBV field isolates in Guangxi Province had distinct variations, and that increasing numbers of genotypes and serotypes are in circulation. We showed that recombination events can lead to the emergence of new serotypes. Our study provides new evidence for understanding of the molecular mechanisms of IBV variations, and the development of new vaccines against IBVs.
Animals
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Antibodies, Viral
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blood
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Chickens
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China
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Coronavirus Infections
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blood
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veterinary
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virology
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Genetic Variation
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Genotype
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Infectious bronchitis virus
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classification
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genetics
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immunology
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isolation & purification
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Molecular Sequence Data
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Phylogeny
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Poultry Diseases
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blood
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virology
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Sequence Homology, Amino Acid
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Spike Glycoprotein, Coronavirus
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chemistry
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genetics
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immunology
4.Development and application of a safe SARS-CoV neutralization assay based on lentiviral vectors pseudotyped with SARS-CoV spike protein.
Ke-Xia YAN ; Wen-Jie TAN ; Xiang-Min ZHANG ; Hui-Juan WANG ; Yan LI ; Li RUAN
Chinese Journal of Virology 2007;23(6):440-446
The severe acute respiratory syndrome-associated coronavirus (SARS-CoV) spike protein (S) is a major target for neutralizing antibody. To develop and apply a safe neutralization assay for SARS-CoV, lentiviral SARS-CoV S pseudotypes had been constructed based on a three plasmid system, which contained pVRC8304 (harboring codon optimized full-length SARS-CoV S protein), pCMV delta 8. 2 (HIV-1 gag/pol construct) and pHR'CMV EGFP (the green fluorescent protein reporter construct). The pseudo-typed lentiviral particles were used to develop an in vitro microneutralization assay that was both sensitive and specific for SARS-CoV neutralizing antibody. We used this assay to determine the titers of the neutralizing antibodies (Nabs) in serum samples from mice immunized with various rVVs expressing different S fragments of SARS-CoV. The serum antibodies derived from S and various segments of S1 region neutralized SARS-CoV in vitro. No cross-neutralization occurred with the goat antiserum prepared with inactivated HCoV-OC43 or HCoV-229E. Neutralization titers measured by this assay were highly parallel with those measured by the assay using live SARS-CoV. Because the pseudotype assay does not require handling live SARS virus, it is a useful tool to determine serum neutralizing titers during natural infection and the preclinical evaluation of candidate vaccines.
Animals
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Antibodies, Viral
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blood
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Blotting, Western
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Lentivirus
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genetics
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Membrane Glycoproteins
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immunology
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Mice
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Neutralization Tests
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methods
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Plasmids
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Recombinant Proteins
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immunology
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Research Design
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SARS Virus
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immunology
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Spike Glycoprotein, Coronavirus
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Viral Envelope Proteins
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immunology
5.Bioinformatics-based Design of Peptide Vaccine Candidates Targeting Spike Protein of MERS-CoV and Immunity analysis in Mice.
Jiaming LAN ; Shuai LU ; Yao DENG ; Bo WEN ; Hong CHEN ; Wen WANG ; Wenjie TAN
Chinese Journal of Virology 2016;32(1):77-81
Middle East respiratory syndrome coronavirus (MERS-CoV) was identified as a novel human coronavirus and posed great threat to public health world wide,which calls for the development of effective and safe vaccine urgently. In the study, peptide epitopes tagrgeting spike antigen were predicted based on bioinformatics methods. Nine polypeptides with high scores were synthesized and linked to keyhole limpet hemocyanin (KLH). Female BALB/C mice were immunized with individual polypeptide-KLH, and the total IgG was detected by ELISA as well as the cellular mediated immunity (CMI) was analyzed using ELIs-pot assay. The results showed that an individual peptide of YVDVGPDSVKSACIEVDIQQTFFDKTWPRPIDVSKADGI could induce the highest level of total IgG as well as CMI (high frequency of IFN-γ secretion) against MERS-CoV antigen in mice. Our study identified a promising peptide vaccine candidate against MERS-CoV and provided an experimental support for bioinformatics-based design of peptide vaccine.
Animals
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Antibodies, Viral
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immunology
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Computational Biology
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Coronavirus Infections
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immunology
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prevention & control
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virology
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Female
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Humans
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Immunization
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Mice
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Mice, Inbred BALB C
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Middle East Respiratory Syndrome Coronavirus
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genetics
;
immunology
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Peptides
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administration & dosage
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genetics
;
immunology
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Spike Glycoprotein, Coronavirus
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administration & dosage
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genetics
;
immunology
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Viral Vaccines
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administration & dosage
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genetics
;
immunology
6.Expression of recombinant spike protein of SARS-coronavirus in vaccinia virus and analysis of its immunogenicity.
Sen HU ; Qing-hua WANG ; Xi-jun WANG ; Xiao-mei WANG ; Zhi-gao BU
Chinese Journal of Virology 2007;23(4):287-291
A recombinant vaccinia virus (rWR-SARS-S)expressing spike protein of severe acute respiratory syndrome coronavirus was constructed. The expression of full length recombinant SARS spike protein (rSS) in HeLa cells possessing specific reaction ability to chicken anti-sera was confirmed by SDS-PAGE and Western-blot (190 kD). HeLa cells infected with rWR-SARS-S also showed high sensitivity in detecting specific serum antibody by indirect immunofluoresence assay (IFA). The results above indicated that the availability of such a faithful model system offers particular advantages for the study of SARS in that it reduces the need for direct manipulation of an exotic pathogen. In the absence of infectious SARS, we may safely carry out detailed biochemical and genetic manipulations to investigate features of viral replication and gene function, as well as explore new avenue for vaccine development.
Animals
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Antibodies, Viral
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immunology
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Antigens, Viral
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immunology
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Blotting, Western
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Chickens
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Enzyme-Linked Immunosorbent Assay
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Fluorescent Antibody Technique, Indirect
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Gene Expression
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HeLa Cells
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Humans
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Immune Sera
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immunology
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Immunization
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methods
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Membrane Glycoproteins
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genetics
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immunology
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Mice
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Recombinant Proteins
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immunology
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SARS Virus
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genetics
;
immunology
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Spike Glycoprotein, Coronavirus
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Vaccinia virus
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genetics
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Viral Envelope Proteins
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genetics
;
immunology
7.Production and immunogenicity of chimeric virus-like particles containing the spike glycoprotein of infectious bronchitis virus.
Lishan LV ; Xiaoming LI ; Genmei LIU ; Ran LI ; Qiliang LIU ; Huifang SHEN ; Wei WANG ; Chunyi XUE ; Yongchang CAO
Journal of Veterinary Science 2014;15(2):209-216
Infectious bronchitis virus (IBV) poses a severe threat to the poultry industry and causes heavy economic losses worldwide. Vaccination is the most effective method of preventing infection and controlling the spread of IBV, but currently available inactivated and attenuated virus vaccines have some disadvantages. We developed a chimeric virus-like particle (VLP)-based candidate vaccine for IBV protection. The chimeric VLP was composed of matrix 1 protein from avian influenza H5N1 virus and a fusion protein neuraminidase (NA)/spike 1 (S1) that was generated by fusing IBV S1 protein to the cytoplasmic and transmembrane domains of NA protein of avian influenza H5N1 virus. The chimeric VLPs elicited significantly higher S1-specific antibody responses in intramuscularly immunized mice and chickens than inactivated IBV viruses. Furthermore, the chimeric VLPs induced significantly higher neutralization antibody levels than inactivated H120 virus in SPF chickens. Finally, the chimeric VLPs induced significantly higher IL-4 production in mice. These results demonstrate that chimeric VLPs have the potential for use in vaccines against IBV infection.
Animals
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Antibodies, Viral/blood
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*Chickens
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Chimera/genetics/immunology
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Coronavirus Infections/prevention & control/*veterinary/virology
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Female
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*Immunity, Innate
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Infectious bronchitis virus/genetics/*immunology
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Influenza A Virus, H5N1 Subtype/genetics/immunology
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Injections, Intramuscular/veterinary
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Mice
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Mice, Inbred BALB C
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Neuraminidase/genetics
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Poultry Diseases/*prevention & control/virology
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Recombinant Fusion Proteins/genetics/immunology
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Spike Glycoprotein, Coronavirus/genetics/*immunology
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Vaccines, Synthetic/administration & dosage/genetics/immunology
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Vaccines, Virus-Like Particle/administration & dosage/genetics/*immunology
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Viral Proteins/genetics
8.Development of monoclonal antibodies against SARS-CoV and identification of antigenic epitopes.
Yan-Jun ZHOU ; Rong-Hong HUA ; Yun-Feng WANG ; Tong-Qing AN ; Jin-Xia LIU ; Jin-Yu YANG ; Yu-Zhuo HUA ; Guang-Zhi TONG
Chinese Journal of Biotechnology 2005;21(2):211-215
Based on the genomic sequence of SARS-CoV strain BJ101, antigenic immunodominant genes coding for the structure proteins of SARS-CoV were predicted by bio-informatics methods, and two chimeric genes A and B with multi-immunodominants lined up by Gly-Pro-Gly linker were synthesized. The chimeric genes were cloned into plasmid pGEX-6p-1 and expressed in E. coli with IPGT inducing. BALB/c mice were immunized with the purified recombinant fusion protein. The specificity of monoclonal antibodies were tested with a commercial ELISA kit for detecting antibody against SARS-CoV. The results showed that two peptides with molecular weights of 34kD and 35kD expressed by the two chimeric genes could be recognized by SARS patient convalescent serum in Western blot. Six positive hybridoma cell lines stably secreting monoclonal antibodies were selected. The subtype of monoclonal antibody D3C5 is IgG2a, and subtypes of all other five monoclonal antibodies are IgG1. Light chains of all monoclonal antibodies are kappa. With a commercial SARS-CoV antibodies detection ELISA kit, five out of six monoclonal antibodies were positively recognized. In western blot analysis with inactived virus cultures, D3D1 specifically recognized a band of about 180 kD. To further analyse the epitopes corresponding to the monoclonal antibodies, six oligoes (S1-S6) from S gene were synthesized and expressed. The results showed that the monoclonal antibodies D3D1 and D3C5 specifically recognized expression product of S2 and S5 oligoes, respectively. The S2 and S5 oligoes are corresponding to 447-458aa and 789-799aa of SARS-CoV S protein respectively.
Animals
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Antibodies, Monoclonal
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biosynthesis
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immunology
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Antibodies, Viral
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biosynthesis
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immunology
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Antibody Specificity
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Epitopes
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genetics
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Escherichia coli
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genetics
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metabolism
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Female
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Humans
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Hybridomas
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secretion
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Membrane Glycoproteins
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immunology
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Mice
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Mice, Inbred BALB C
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Recombinant Fusion Proteins
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biosynthesis
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genetics
;
immunology
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SARS Virus
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immunology
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Spike Glycoprotein, Coronavirus
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Viral Envelope Proteins
;
immunology
9.A strategy for searching antigenic regions in the SARS-CoV spike protein.
Yan REN ; Zhengfeng ZHOU ; Jinxiu LIU ; Liang LIN ; Shuting LI ; Hao WANG ; Ji XIA ; Zhe ZHAO ; Jie WEN ; Cuiqi ZHOU ; Jingqiang WANG ; Jianning YIN ; Ningzhi XU ; Siqi LIU
Genomics, Proteomics & Bioinformatics 2003;1(3):207-215
In the face of the worldwide threat of severe acute respiratory syndrome (SARS) to human life, some of the most urgent challenges are to develop fast and accurate analytical methods for early diagnosis of this disease as well as to create a safe anti-viral vaccine for prevention. To these ends, we investigated the antigenicity of the spike protein (S protein), a major structural protein in the SARS-coronavirus (SARS-CoV). Based upon the theoretical analysis for hydrophobicity of the S protein, 18 peptides were synthesized. Using Enzyme-Linked Immunosorbent Assay (ELISA), these peptides were screened in the sera from SARS patients. According to these results, two fragments of the S gene were amplified by PCR and cloned into pET-32a. Both S fragments were expressed in the BL-21 strain and further purified with an affinity chromatography. These recombinant S fragments were confirmed to have positive cross-reactions with SARS sera, either by Western blot or by ELISA. Our results demonstrated that the potential epitope regions were located at Codons 469-882 in the S protein, and one epitope site was located at Codons 599-620. Identification of antigenic regions in the SARS-CoV S protein may be important for the functional studies of this virus or the development of clinical diagnosis.
Antigens, Viral
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immunology
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Chromatography, High Pressure Liquid
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Cloning, Molecular
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Electrophoresis, Polyacrylamide Gel
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Enzyme-Linked Immunosorbent Assay
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Genetic Vectors
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Humans
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Mass Spectrometry
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Membrane Glycoproteins
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genetics
;
immunology
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metabolism
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Molecular Weight
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Peptide Fragments
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chemistry
;
Recombinant Proteins
;
genetics
;
immunology
;
SARS Virus
;
genetics
;
immunology
;
metabolism
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Spike Glycoprotein, Coronavirus
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Viral Envelope Proteins
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genetics
;
immunology
;
metabolism
10.Potent neutralization antibody elicited in mice by SARS-associated coronavirus spike protein S1 domain.
Yun ZHANG ; Fan YANG ; Yan-han LI ; Wen-hui LI ; Xin-ming TU ; Qiang WEI ; Hua ZHU ; Li LIU ; Heng WANG ; Chuan QIN ; Guo-yong YUAN ; Wei HE ; Shu-hui WANG
Chinese Journal of Experimental and Clinical Virology 2004;18(3):258-260
OBJECTIVETo study the antigenicity of SARS associated coronavirus (CoV) spike S1 (12-672Aa) domain.
METHODSBALB/c mice were immunized with a plasmid bearing codon-optimized SARS-CoV (Tor2 strain) S1 domain and then boosted with purified S1 protein; the SARS-CoV specific IgG antibody was tested by ELISA and neutralization antibody was determined by in vitro microneutralization assay.
RESULTSS1 domain of SARS-CoV spike, which has been demonstrated harboring the receptor binding domain, successfully elicited SARS-CoV specific IgG antibody in mouse after combined immunization with DNA and purified S1 protein; the antibody elicited solely by S1 could potently neutralize SARS-CoV (HKU-39849) in vitro, 50% of 1 000 TCID50 SARS-CoV challenged cells were protected from viral infection by a 1:1499.68 dilution of mice sera immunized with S1 protein, but negative control sera showed no protection.
CONCLUSIONS1 domain of SARS-CoV spike protein, which is responsible for receptor binding, can efficiently and sufficiently induce highly potent neutralizing antibody in mice. This result suggested that S1 domain could be an effective subunit vaccines against SARS-CoV.
Animals ; Antibodies, Viral ; blood ; Cell Line ; Embryo, Mammalian ; Epithelial Cells ; metabolism ; Female ; Humans ; Immunization ; Immunoglobulin G ; blood ; Kidney ; cytology ; Membrane Glycoproteins ; genetics ; immunology ; metabolism ; Mice ; Mice, Inbred BALB C ; Neutralization Tests ; SARS Virus ; genetics ; immunology ; Severe Acute Respiratory Syndrome ; immunology ; virology ; Spike Glycoprotein, Coronavirus ; Transfection ; Viral Envelope Proteins ; genetics ; immunology ; metabolism