1.Immunogenic evaluation of pseudorabies virus gB protein expressed in the baculovirus-insect cell system.
Jin WANG ; Kai WANG ; Ying ZHANG ; Shuzhen TAN ; Shiqi SUN ; Huichen GUO ; Shuanghui YIN ; Jiaqiang NIU
Chinese Journal of Biotechnology 2025;41(7):2694-2706
Pseudorabies (PR) is an infectious disease caused by the pseudorabies virus (PRV), affecting various domesticated and wild animals. Since pigs are the only natural hosts of PRV, PR poses a serious threat to the pig farming industry. Currently, PR is primarily prevented through vaccination with inactivated vaccines or genetically modified attenuated live vaccines. Developing safe and effective genetically engineered vaccines would facilitate the eradication and control of PR. In this study, the PRV vaccine strain Bartha-K61 was used as the reference strain. The gB protein was expressed via the baculovirus-insect cell expression system. Non-denaturing gel electrophoresis confirmed that the gB protein could form a trimeric structure. The purified gB protein was used to immunize mice, and the immune effect was evaluated by a challenge test. The results showed that the gB antigen induced a strong immune response in mice, with the serum-neutralizing antibody titer above 1:70. The lymphocyte stimulation index reached more than 1.29, and the level of (interferon gamma, IFN-γ) release was higher than 100 pg/mL. After immunization, mice were challenged with the virus at a dose of 104 TCID₅₀/mL, 200 μL per mouse, and the clinical protection rate was 100%. Immunohistochemistry, histopathological section, and tissue viral load results showed that the pathological damage and viral load in the gB-immunized group were significantly lower than those in the PBS group. In summary, the gB protein obtained in this study induced strong humoral and cellular immune responses in mice, laying a foundation for developing a recombinant gB protein subunit vaccine.
Animals
;
Mice
;
Baculoviridae/metabolism*
;
Viral Envelope Proteins/biosynthesis*
;
Herpesvirus 1, Suid/genetics*
;
Pseudorabies/immunology*
;
Swine
;
Pseudorabies Vaccines/genetics*
;
Antibodies, Viral/blood*
;
Insecta/cytology*
;
Mice, Inbred BALB C
;
Female
;
Viral Vaccines/immunology*
2.Development and immunogenicity evaluation in mice of a novel mRNA vaccine expressing herpes simplex virus type 2 envelope glycoprotein gD.
Jialuo BING ; Liye JIN ; Yao DENG ; Shucai SUN ; Xiaotian HAN ; Xueting CHENG ; Zhenyong QI ; Tangqi WANG ; Ruiwen HAN ; Desheng ZHAI ; Wenjie TAN
Chinese Journal of Biotechnology 2025;41(8):3241-3251
Human alphaherpesvirus 2 (HSV-2) is the main pathogen resulting human genital herpes, which poses a major threat to the socio-economic development, while there is no effective vaccine. In this study, we developed a novel lipopolyplex (LPP)-delivered mRNA vaccine expressing the HSV-2 envelope glycoprotein gD and evaluated its immunogenicity in mice. The mRNA vaccine was prepared from the genetically modified gD mRNA synthesized in vitro combined with the LPP delivery platform and it was named gD-ORI mRNA. The expression of gD antigen in the mRNA vaccine was validated in vitro by Western blotting and indirect immunofluorescence assay, then the immune responses induced by this mRNA vaccine in mice were evaluated. The immunization with gD mRNA alone induced strong humoral and cellular immune responses in mice. Robust and long-lasting gD-specific IgG antibodies were detected in the mouse serum after booster immunization with gD-ORI mRNA. The immunized mice exhibited a Th1/Th2 balanced IgG response and robust neutralizing antibodies against HSV-2, and a clear dose-response relationship was observed. The gD-specific IgG antibodies were maintained in mice for a long time, up to 18 weeks post-booster immunization. At the same time, multifunctional gD-specific CD4+ and CD8+ T cells in vaccinated mice were detected by intracellular cytokine staining (ICS). This novel gD-expressing mRNA vaccine delivered by LPP induces strong and long-lasting immune responses in mice post booster immunization and has a promising prospect for development and application. This study provides scientific evidence and reference for the development of a new mRNA vaccine for HSV-2.
Animals
;
Herpesvirus 2, Human/genetics*
;
Viral Envelope Proteins/genetics*
;
Mice
;
Herpes Genitalis/immunology*
;
RNA, Messenger/immunology*
;
Female
;
Mice, Inbred BALB C
;
Antibodies, Viral/blood*
;
mRNA Vaccines/immunology*
;
Antibodies, Neutralizing/blood*
;
Humans
3.Generation of Japanese Encephalitis Virus-like Particle Vaccine and Preliminary Evaluation of Its Protective Efficiency.
Yanfang ZHANG ; Ruikun DU ; Shaomei HUANG ; Tao ZHANG ; Jinliang LIU ; Bibo ZHU ; Hualin WANG ; Fei DENG ; Shengbo CAO
Chinese Journal of Virology 2016;32(2):150-155
The cDNA fragment of JEV prME gene was cloned into the baculovirus shuttle vector (bacmid) to construct a recombinant baculovirus vector, defined as AcBac-prME. Then the recombinant baculovirus Ac-prME was obtained by transfecting Sf9 cells with AcBac-prME. Western blot analysis and immunofluorescence results indicated that both prM and E proteins were efficiently expressed in Sf9 cells. Electron microscopy suggested that prME was assembled into JEV-VLPs. To further evaluate the potential of JEV-VLPs as vaccine, the mice were immunized with JEV-VLPs and then challenged with lethal JEV. The results of mice survival and pathological changes demonstrated that the JEV-VLPs performed complete protection against JEV-P3 strain and relieved pathological changes in the mice brain significant. This study suggest that JEV-VLPs would be a potential vaccine for Japanese encephalitis virus.
Animals
;
Antibodies, Viral
;
immunology
;
Encephalitis Virus, Japanese
;
genetics
;
immunology
;
Encephalitis, Japanese
;
immunology
;
prevention & control
;
virology
;
Humans
;
Japanese Encephalitis Vaccines
;
administration & dosage
;
genetics
;
immunology
;
Mice
;
Mice, Inbred BALB C
;
Sf9 Cells
;
Vaccination
;
Vaccines, Virus-Like Particle
;
administration & dosage
;
genetics
;
immunology
;
Viral Envelope Proteins
;
administration & dosage
;
genetics
;
immunology
4.Eukaryotic Expression and Immunogenic Research of Recombination Ebola Virus Membrane Protein Gp-Fc.
Xiaoguang ZHANG ; Ren YANG ; Jiao WANG ; Xuan WANG ; Mieling HOU ; Lina AN ; Ying ZHU ; Yuxi CAO ; Yi ZENG
Chinese Journal of Virology 2016;32(1):8-13
We used 293 cells to express the recombinant membrane protein of the Ebola virus. Then, the immunogenicity of the recombinant protein was studied by immunized BALB/c mice. According to the codon use frequency of humans, the gene encoding the extracellular domain of the Ebola virus membrane protein was optimized, synthesized, and inserted into the eukaryotic expression plasmid pXG-Fc to construct the human IgG Fc and Ebola GP fusion protein expression plasmid pXG-modGP-Fc. To achieve expression, the fusion protein expression vector was transfected into high-density 293 cells using transient transfection technology. The recombinant protein was purified by protein A affinity chromatography. BALB/c mice were immunized with the purified fusion protein, and serum antibody titers evaluated by an indirect enzyme-linked immunosorbent assay (ELISA). Purification and analyses of the protein revealed that the eukaryotic expression vector could express the recombinant protein GP-Fc effectively, and that the recombinant protein in the supernatant of the cell culture was present as a dimer. After immunization with the purified recombinant protein, a high titer of antigen-specific IgG could be detected in the serum of immunized mice by indirect ELISA, showing that the recombinant protein had good immunogenicity. These data suggest that we obtained a recombinant protein with good immunogenicity. Our study is the basis for development of a vaccine against the Ebola virus and for screening of monoclonal antibodies.
Animals
;
Antibodies, Viral
;
immunology
;
Ebolavirus
;
genetics
;
immunology
;
Female
;
Gene Expression
;
Hemorrhagic Fever, Ebola
;
immunology
;
virology
;
Humans
;
Immunization
;
Male
;
Mice
;
Mice, Inbred BALB C
;
Recombinant Proteins
;
genetics
;
immunology
;
Viral Envelope Proteins
;
genetics
;
immunology
5.Mapping of the B Cell Neutralizing Epitopes on ED III of Envelope Protein from Dengue Virus.
Yaying LIN ; Kun WEN ; Yonghui GUO ; Liwen QIU ; Yuxian PAN ; Lan YU ; Biao DI ; Yue CHEN
Chinese Journal of Virology 2015;31(6):665-673
Dengue virus (DENV) envelope [E] protein is the major surface protein of the virions that indued neutralizing antibodies. The domain III of envelope protein (EDIII) is an immunogenic region that holds potential for the development of vaccines; however, the epitopes of DENV EDIII, especially neutralizing B-cell linear epitopes, have not been comprehensively mapped. We mapped neutralizing B-cell linear epitopes on DENV-1 EDIII using 27 monoclonal antibodies against DENV-1 EDIII proteins from mice immunized with the DENV-1 EDIII. Epitope recognition analysis was performed using two set of sequential overlapping peptides (16m and 12m) that spanned the entire EDIII protein from DENV-1, respectively. This strategy identified a DENV-1 type- specific and a group-specific neutralizing epitope, which were highly conserved among isolates of DENV-1 and the four DENV serotypes and located at two regions from DENV-1 E, namely amino acid residues 309-320 and 381-392(aa 309-320 and 381-392), respectively. aa310 -319(310KEVAETQHGT319)was similar among the four DENV serotypes and contact residues on aa 309 -320 from E protein were defined and found that substitution of residues E309 , V312, A313 and V320 in DENV-2, -3, -4 isolates were antigenically silent. We also identified a DENV-1 type-specific strain-restricted neutralizing epitope, which was located at the region from DENV-1 E, namely amino acid residues 329-348 . These novel type- and group-specific B-cell epitopes of DENV EDIII may aid help us elucidate the dengue pathogenesis and accelerate vaccine design.
Amino Acid Sequence
;
Animals
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Antibodies, Neutralizing
;
immunology
;
Dengue
;
virology
;
Dengue Virus
;
chemistry
;
genetics
;
immunology
;
Epitope Mapping
;
Epitopes, B-Lymphocyte
;
chemistry
;
genetics
;
immunology
;
Humans
;
Mice
;
Molecular Sequence Data
;
Viral Envelope Proteins
;
chemistry
;
genetics
;
immunology
6.Hsp70 Fused with the Envelope Glycoprotein E0 of Classical Swine Fever Virus Enhances Immune Responses in Balb/c Mice.
Qianqian XU ; Xiaomin ZHANG ; Jiao JING ; Baojun SHI ; Shiqi WANG ; Bin ZHOU ; Puyan CHEN
Chinese Journal of Virology 2015;31(4):363-369
Heat-shock protein (Hsp) 70 potentiates specific immune responses to some antigenic peptides fused to it. Here, the prokaryotic plasmids harboring the envelope glycoprotein E0 gene of classical swine fever virus (CSFV) and/or the Hsp70 gene of Haemophilus parasuis were constructed and expressed in Escherichia coli Rosseta 2(R2). The fusion proteins were then purified. Groups of Balb/c mice were immunized with these fusion proteins, respectively, and sera collected 7 days after the third immunization. Immune effects were determined via an enzyme-linked immunosorbent assay and flow cytometric analyses. E0-Hsp70 fusion protein and E0+Hsp70 mixture significantly improved the titer of E-specific antibody, levels of CD4+ and CD8+ T cells, and release of interferon-γ. These findings suggested that Hsp70 can significantly enhance the immune effects of the envelope glycoprotein E0 of CSFV, thereby laying the foundation of further application in pigs.
Animals
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Antibodies, Viral
;
blood
;
CD4-Positive T-Lymphocytes
;
cytology
;
immunology
;
CD8-Positive T-Lymphocytes
;
cytology
;
immunology
;
Cell Proliferation
;
Classical swine fever virus
;
genetics
;
Female
;
HSP70 Heat-Shock Proteins
;
genetics
;
immunology
;
Haemophilus parasuis
;
genetics
;
Immunization
;
Interferon-gamma
;
metabolism
;
Mice
;
Mice, Inbred BALB C
;
Plasmids
;
genetics
;
Recombinant Fusion Proteins
;
genetics
;
immunology
;
Viral Envelope Proteins
;
genetics
7.Recombinant Kluyveromyces lactis expressing highly pathogenic porcine reproductive and respiratory syndrome virus GP5 elicits mucosal and cell-mediated immune responses in mice.
Haiyan ZHAO ; Yalan WANG ; Zhitao MA ; Yongqiang WANG ; Wen Hai FENG
Journal of Veterinary Science 2014;15(2):199-208
Currently, killed-virus and modified-live porcine reproductive and respiratory syndrome virus (PRRSV) vaccines are used to control porcine reproductive and respiratory syndrome. However, both types of vaccines have inherent drawbacks; accordingly, the development of novel PRRSV vaccines is urgently needed. Previous studies have suggested that yeast possesses adjuvant activities, and it has been used as an expression vehicle to elicit immune responses to foreign antigens. In this report, recombinant Kluyveromyces lactis expressing GP5 of HP-PRRSV (Yeast-GP5) was generated and immune responses to this construct were analyzed in mice. Intestinal mucosal PRRSV-specific sIgA antibody and higher levels of IFN-gamma in spleen CD4+ and CD8+ T cells were induced by oral administration of Yeast-GP5. Additionally, Yeast-GP5 administered subcutaneously evoked vigorous cell-mediated immunity, and PRRSV-specific lymphocyte proliferation and IFN-gamma secretion were detected in the splenocytes of mice. These results suggest that Yeast-GP5 has the potential for use as a vaccine for PRRSV in the future.
Administration, Oral
;
Animals
;
Antibodies, Viral/*immunology
;
B-Lymphocytes/immunology/virology
;
Enzyme-Linked Immunosorbent Assay
;
*Immunity, Cellular
;
*Immunity, Mucosal
;
Injections, Subcutaneous
;
Kluyveromyces/genetics
;
Mice
;
Mice, Inbred BALB C
;
Porcine respiratory and reproductive syndrome virus/*immunology
;
Recombinant Proteins/genetics/immunology
;
T-Lymphocytes/immunology/virology
;
Viral Envelope Proteins/*genetics/*immunology
;
Viral Vaccines/administration & dosage/*pharmacology
8.Positive effects of porcine IL-2 and IL-4 on virus-specific immune responses induced by the porcine reproductive and respiratory syndrome virus (PRRSV) ORF5 DNA vaccine in swine.
Deyuan TANG ; Jian LIU ; Chunyan LI ; Hua ZHANG ; Ping MA ; Xianfeng LUO ; Zhiyong ZENG ; Nining HONG ; Xia LIU ; Bin WANG ; Feng WANG ; Zhenlei GAN ; Fei HAO
Journal of Veterinary Science 2014;15(1):99-109
The purpose of this study was to investigate the effects of porcine interleukin (IL)-2 and IL-4 genes on enhancing the immunogenicity of a porcine reproductive and respiratory syndrome virus ORF5 DNA vaccine in piglets. Eukaryotic expression plasmids pcDNA-ORF5, pcDNA-IL-2, and pcDNA-IL-4 were constructed and then expressed in Marc-145 cells. The effects of these genes were detected using an indirect immunofluorescent assay and reverse transcription polymerase chain reaction (RT-PCR). Characteristic fluorescence was observed at different times after pcDNA-ORF5 was expressed in the Marc-145 cells, and PCR products corresponding to ORF5, IL-2, and IL-4 genes were detected at 48 h. Based on these data, healthy piglets were injected intramuscularly with different combinations of the purified plasmids: pcDNA-ORF5 alone, pcDNA-ORF5 + pcDNA-IL-2, pcDNA-ORF5 + pcDNA-IL-4, and pcDNA-ORF5 + pcDNAIL-4 + pcDNA-IL-2. The ensuing humoral immune responses, percentages of CD4+ and CD8+ T lymphocytes, proliferation indices, and interferon-gamma expression were analyzed. Results revealed that the piglets co-immunized with pcDNA-ORF5 + pcDNA-IL-4 + pcDNA-IL-2 plasmids developed significantly higher antibody titers and neutralizing antibody levels, had significantly increased levels of specific T lymphocyte proliferation, elevated percentages of CD4+ and CD8+ T lymphocytes, and significantly higher IFN-gamma production than the other inoculated pigs (p < 0.05).
Animals
;
Cell Line
;
Escherichia coli/genetics
;
Haplorhini
;
Immunity, Cellular
;
Interleukin-2/genetics/*metabolism
;
Interleukin-4/genetics/*metabolism
;
Neutralization Tests/veterinary
;
Plasmids
;
Porcine Reproductive and Respiratory Syndrome/*prevention & control
;
Porcine respiratory and reproductive syndrome virus/*immunology
;
Recombinant Proteins/genetics/metabolism
;
Swine
;
Vaccines, DNA/immunology
;
Viral Envelope Proteins/*genetics/metabolism
;
Viral Vaccines/*immunology
9.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
;
immunology
;
Bacteriophages
;
genetics
;
metabolism
;
Epitopes
;
genetics
;
immunology
;
Humans
;
Membrane Glycoproteins
;
genetics
;
immunology
;
Peptide Library
;
SARS Virus
;
genetics
;
immunology
;
Severe Acute Respiratory Syndrome
;
immunology
;
virology
;
Spike Glycoprotein, Coronavirus
;
Viral Envelope Proteins
;
genetics
;
immunology
10.Research progress on ebola virus glycoprotein.
Guo-Yong DING ; Zhi-Yu WANG ; Lu GAO ; Bao-Fa JIANG
Chinese Journal of Virology 2013;29(2):233-237
Ebola virus (EBOV) causes outbreaks of a highly lethal hemorrhagic fever in humans and there are no effective therapeutic or prophylactic treatments available. The glycoprotein (GP) of EBOV is a transmembrane envelope protein known to play multiple functions including virus attachment and entry, cell rounding and cytotoxicity, down-regulation of host surface proteins, and enhancement of virus assembly and budding. GP is the primary target of protective immunity and the key target for developing neutralizing antibodies. In this paper, the research progress on genetic structure, pathogenesis and immunogenicity of EBOV GP in the last 5 years is reviewed.
Animals
;
Antibodies, Viral
;
immunology
;
Ebolavirus
;
genetics
;
immunology
;
physiology
;
Glycoproteins
;
genetics
;
immunology
;
metabolism
;
Hemorrhagic Fever, Ebola
;
immunology
;
virology
;
Humans
;
Viral Envelope Proteins
;
genetics
;
immunology
;
metabolism
;
Virus Assembly

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