| Literature DB >> 22649643 |
R Y Kotlyarov1, V V Kuprianov, A I Migunov, L A Stepanova, L M Tsybalova, O I Kiselev, N V Ravin, K G Skryabin.
Abstract
The conventional vaccines currently being used to deal with influenza are based on a virus obtained in chicken embryos or its components. The high variability of the major immunogenic surface proteins - hemagglutinin and neuraminidase-require the development of strain-specific vaccines that match the antigenic specificity of a newly emerging virus. Recombinant vaccines based on single viral proteins that could be easily produced in standard expression systems are attractive alternatives to traditional influenza vaccines. We constructed recombinant nanosized virus-like particles based on a nuclear antigen of the hepatitis B virus. These particles expose on the surface the extracellular domain of the M2 protein of the highly pathogenic A(H1N1) 2009 influenza virus. The methods of production of these virus-like particles in Escherichia coli and their purification were developed. Experiments on animals show that M2sHBc particles are highly immunogenic in mice and provide complete protection against the lethal influenza challenge.Entities:
Keywords: HBc antigen; M2 protein; influenza; nanoparticle; vaccine
Year: 2010 PMID: 22649643 PMCID: PMC3347559
Source DB: PubMed Journal: Acta Naturae ISSN: 2075-8251 Impact factor: 1.845
Evaluation of immunogenicity and protectivity of the candidate vaccine based on the M2e peptide of the swine influenza virus.
| Group of mice | Number of mice | First immunization | Second immunization | Third immunization | Influenza virus challenge | ||
|---|---|---|---|---|---|---|---|
| A/Duck/Potsdam/1402-6/1986 (Н5N2) | A/California/04/2009 (H1N1) | A/PR/8/34 | |||||
| Experimental (М2sНВс) | 60 |
60 mice with TiterMax Gold Adjuvant 50 μg/mice s.c.
( | 60 mice with Freund's incomplete adjuvant 50 μg/mice s.c. | 60 mice with Freund's incomplete adjuvant 50 μg/mice s.c. | 20 mice 5 LD/50 | 20 mice 5 LD/50 | 10 mice 5 LD/50 |
| Control | 40 | 15 mice 5 LD/50 | 15 mice 5 LD/50 | 10 mice 5 LD/50 | |||
subcutaneous injection
Fig. 1Expression and purification of М2sНВс particles. (А) SDS-PAGE analysis of protein samples. 1 - molecular weight marker, kDa. 2 - protein sample from the strain DLT1270/ pQE- M2sHBc before the induction of М2sНВс expression. 3 - the same as in line 2, but after 16h induction of M2sHBc expression. 4 - purified M2sHBc particles (В) Electron microscopy of М2sНВс particles.
Titers of IgG antibodies against M2e in sera of immunized mice.
| Serum samples |
Titers of antibodies recognizing synthetic | |||
|---|---|---|---|---|
| G-26 | G-19 | G-11-1 | G-18 | |
| After first immunization | 1600 | 1600 | 800 | 800 |
| After third immunization | 51200 | 51200 | 51200 | 6400 |
| Positive control (monoclonal antibodies against G19 peptide, clone D2) | >51200 | >51200 | >51200 | 1600 |
| Negative control (sera of nonvaccinated mice) | <400 | <400 | <400 | <400 |
Fig. 2Dynamics of body weight of mice after challenge with influenza virus A/California/04/2009 (H1N1). Data in the control are shown for survived mice.
Fig. 3Survival of mice immunized with M2sHBc, followed by a potentially lethal challenge with different mouse-adapted influenza strains.
Sequence comparison of extracellular domains of M2 proteins of influenza strains of human and animal origins. Amino acids that change relative to the human influenza M2e consensus sequence are underlined.
| Host | Strain | М2е peptide sequence |
|---|---|---|
| Swine/human | A/California/04/2009 |
SLLTEVETP |
| Human | Consensus sequence | SLLTEVETPIRNEWGCRCNDSSD |
| Human | A/PR/8/34 | SLLTEVETPIRNEWGCRCNGSSD |
| Avian | A/Chicken/Kurgan/05/2005 |
SLLTEVETP |
| Avian | A/Duck/ Potsdam1402-6/1986 |
SLLTEVETP |