Zhenghong YANG, Mingjie NING, Daqian HE, Mengzhe YANG, Yongping HUANG, Yunchao HUANG. Effect of Surface Topography on Staphylococcus Epidermidis Biofilm Formation by Different 3D Printing Thickness of Biomaterials[J]. Journal of Kunming Medical University, 2022, 43(2): 12-17. doi: 10.12259/j.issn.2095-610X.S20220228
Citation: Qi-qi FAN, Heng LI, Xin ZHAO, Jian ZHOU, Lei GUO, Li QIN, Long-ding LIU. Serological Study to Self-assembled Nanoparticle Influenza Vaccine with the M2e-HA2 Epitopes[J]. Journal of Kunming Medical University, 2021, 42(9): 20-24. doi: 10.12259/j.issn.2095-610X.S20210905

Serological Study to Self-assembled Nanoparticle Influenza Vaccine with the M2e-HA2 Epitopes

doi: 10.12259/j.issn.2095-610X.S20210905
  • Received Date: 2021-07-02
    Available Online: 2021-09-03
  • Publish Date: 2021-09-30
  •   Objective   To construct the self-assembled nanoparticle influenza vaccine with the M2e-HA2 epitopes, and detect the immunological serology.  Methods   The M2e and HA2 antigen epitopes of influenza viruses were expressed in tandem with Ferritin protein, and the nanometer self-assembled particles were extracted under the condition of non-denatured and purified by affinity chromatography. The mice were immunized for two times, after the two immunizations, serum of mice was collected, western blot was used for antigenicity detection, and ELISA was used for antibody level detection.   Results   M2e-HA2self-assembled nanoparticles were successfully prepared, and high levels of M2e and HA2 specific antibodies were produced in the serum of immunized mice.  Conclusion   M2e-HA2 self-assembled nanoparticles can stimulate the production of high levels of M2e and HA2 specific antibodies in mice, laying the foundation for the development of a universal influenza vaccine.
  • [1]
    Dharmapalan D. Influenza[J]. Indian J Pediatr,2020,87(10):828-832. doi: 10.1007/s12098-020-03214-1
    [2]
    Kim H,R G Webster,R J Webby. Influenza virus:Dealing with a drifting and shifting pathogen[J]. Viral Immunol,2018,31(2):174-183. doi: 10.1089/vim.2017.0141
    [3]
    Yuan L Y,Zhou M,Lv H,et al. Involvement of NEAT1/miR-133a axis in promoting cervical cancer progression via targeting SOX4[J]. J Cell Physiol,2019,234(10):18985-18993. doi: 10.1002/jcp.28538
    [4]
    Graham-Rowe D. Epidemiology:Racing against the flu[J]. Nature,2011,480(7376):S2-3. doi: 10.1038/480S2a
    [5]
    Lam T T,Wang J,Shen Y,et al. The genesis and source of the H7N9 influenza viruses causing human infections in China[J]. Nature,2013,502(7470):241-244. doi: 10.1038/nature12515
    [6]
    Deng L,Mohan T,Chang T Z,et al. Double-layered protein nanoparticles induce broad protection against divergent influenza A viruses[J]. Nat Commun,2018,9(1):359. doi: 10.1038/s41467-017-02725-4
    [7]
    Eichelberger M C,Monto A S. Neuraminidase,the forgotten surface antigen,emerges as an influenza vaccine target for broadened protection[J]. J Infect Dis,2019,219(Suppl_1):S75-S80.
    [8]
    Dunkle L M,Izikson R. Recombinant hemagglutinin influenza vaccine provides broader spectrum protection[J]. Expert Rev Vaccines,2016,15(8):957-966. doi: 10.1080/14760584.2016.1203261
    [9]
    Wang K,Holtz K M,Anderson K,et al. Expression and purification of an influenza hemagglutinin--one. Step closer to a recombinant protein-based influenza vaccine[J]. Vaccine,2006,24(12):2176-2185. doi: 10.1016/j.vaccine.2005.11.005
    [10]
    Qi M,Zhang X E,Sun X,et al. Intranasal nanovaccine confers homo- and hetero-subtypic influenza protection[J]. Small,2018,14(13):e1703207. doi: 10.1002/smll.201703207
    [11]
    Saelens X. The role of matrix protein 2 ectodomain in the development of universal influenza vaccines[J]. J Infect Dis,2019,219(Suppl_1):S68-S74.
    [12]
    Kanekiyo M,Wei C J,Yassine H M,et al. Self-assembling influenza nanoparticle vaccines elicit broadly neutralizing H1N1 antibodies[J]. Nature,2013,499(7456):102-106. doi: 10.1038/nature12202
    [13]
    Liu X,Theil E C. Ferritins:dynamic management of biological iron and oxygen chemistry[J]. Acc Chem Res,2005,38(3):167-175. doi: 10.1021/ar0302336
    [14]
    Stillman T J,Connolly P P,Latimer C L,et al. Insights into the effects on metal binding of the systematic. Substitution of five key glutamate ligands in the ferritin of Escherichia coli[J]. J Biol Chem,2003,278(28):26275-26286. doi: 10.1074/jbc.M207354200
    [15]
    Cho K J,Shin H J,Lee J H,et al. The crystal structure of ferritin from helicobacter pylori reveals unusual conformational changes for iron uptake[J]. J Mol Biol,2009,390(1):83-98. doi: 10.1016/j.jmb.2009.04.078
    [16]
    Ong L L,Hanikel N,Yaghi O K,et al. Programmable self-assembly of three-dimensional nanostructures. From 10,000 unique components[J]. Nature,2017,552(7683):72-77. doi: 10.1038/nature24648
    [17]
    Englander S W,Mayne L,Krishna M M. Protein folding and misfolding:Mechanism and principles[J]. Q. Rev Biophys,2007,40(4):287-326.
    [18]
    Pieters B J,van Eldijk M B,Nolte R J,et al. Natural supramolecular protein assemblies[J]. Chem Soc Rev,2016,45(1):24-39. doi: 10.1039/C5CS00157A
    [19]
    Chen Y Q,Lan L Y,Huang M,et al. Hemagglutinin stalk-reactive antibodies interfere with influenza virus neuraminidase activity by steric hindrance[J]. J Virol,2019,93(4):e01526.
    [20]
    Zhang Y,Ardejani M S,Orner B P. Design and applications of protein-cage-based nanomaterials[J]. Chem. Asian J,2016,11(20):2814-2828. doi: 10.1002/asia.201600769
    [21]
    Rother M,Nussbaumer M G,Renggli K,et al. Protein cages and synthetic polymers:a fruitful symbiosis. For drug delivery applications,bionanotechnology and materials science[J]. Chem Soc Rev,2016,45(22):6213-6249. doi: 10.1039/C6CS00177G
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