| Literature DB >> 32532076 |
Anna Czarnota1, Anna Offersgaard2,3, Anne Finne Pihl2,3, Jannick Prentoe2,3, Jens Bukh2,3, Judith Margarete Gottwein2,3, Krystyna Bieńkowska-Szewczyk1, Katarzyna Grzyb1.
Abstract
Entities:
Keywords: HBV small surface antigen (sHBsAg); hepatitis C virus; vaccine; virus like particles (VLPs)
Year: 2020 PMID: 32532076 PMCID: PMC7350033 DOI: 10.3390/vaccines8020294
Source DB: PubMed Journal: Vaccines (Basel) ISSN: 2076-393X
Figure 1Construction of chimeric proteins. (a) Epitope sequences were derived from the hepatitis C virus (HCV) isolate H77C (GenBank accession no. AF011751). The underlined alanine corresponds to the substituted cysteine. (b) Recombinant constructs were generated by insertion of the sequences coding for HCV E2 epitopes into the sequence coding for the hydrophilic loop of the hepatitis B virus (HBV) small surface antigen (sHBsAg) protein at positions I110/S117(Δ111–116) and/or P127/A128—insertion sites are marked with black arrows.
Figure 2Expression and characterization of the chimeric proteins. (a) Western blot analysis of the chimeric proteins expressed in L. tarentolae. Cell lysates were separated using SDS-PAGE and detected with the anti-HBsAg antibody. The lysate from wild-type L. tarentolae cells was used as the negative control (NC). Bands of higher molecular mass correspond with the multimeric forms of the proteins. On the left protein ladder, the molecular weight in kDa is given. (b) In order to concentrate and partially purify the chimeric particles, lysates from the L. tarentolae cell cultures expressing chimeric proteins were placed on top of an OptiPrep density gradient. Seventeen fractions of 0.5 mL were harvested from top to bottom. The aliquots of fractions 2–15 were then analyzed using a western blot with anti-HBsAg antibodies. On the left protein ladder, the molecular weight in kDa is given. (c) Electron micrographs of chimeric sHBsAg-based particles. After concentration on the Optiprep density gradient, the chimeric particles were stained with uranyl acetate and analyzed using electron microscopy. Observed particles were approximately 20–30 nm in diameter. Black arrows: Chimeric virus-like particles (VLPs). Scale bar: 50 nm.
OD600 of Leishmania tarentolae cell cultures. The measurement was performed for L. tarentolae recombinant cell lines expressing chimeric proteins 72 h after tetracycline induction. The data represent the mean values from a minimum of three independent procedures.
| OD600 | |
|---|---|
| sHBsAg_502–520 | 4.9 |
| sHBsAg_434–446 | 2.4 |
| sHBsAg_523–535 | 4.8 |
| sHBsAg_434–446_523–535 | 4.8 |
| sHBsAg_434–446_412–425 | 4.5 |
| sHBsAg_502–520_523–535 | 5.0 |
| sHBsAg_412–425 | 5.3 |
| sHBsAg_wt | 4.9 |
Figure 3Immunization with chimeric sHBsAg-based particles elicited specific antibody responses in mice. (a–d) For analysis of binding of immune sera to HCV peptides, streptavidin-coated microplates were coated with 5 µg/mL of biotinylated synthetic peptides covering epitopes 412–425, 523–535, 502–520, and 434–446 of HCV E2. (e) For analysis of binding of immune sera to yeast-derived sHBsAg (yHBsAg), ELISA plates were coated with 5 µg/mL of purified sHBsAg protein derived from Pichia pastoris. The dilution factors of the mouse sera are shown on axis x. The mean A450 values are shown on axis y. The background signal from the negative control mouse sera was subtracted from the obtained results. The data represent the results from two independent experiments performed in duplicate, and error bars indicate standard deviations. The dashed horizontal line represents the cutoff value (three times the mean background value).
Cross-reactivity of immune sera to E1E2 complexes from different HCV genotypes in (a) reduced/denatured and (b) native conditions. The sera dilution factor was 1:1000. “+” sections suggest signal of high intensity (A450 > 0.5 for native conditions; A450 > 1.5 for reduced/denatured conditions), indicating strong binding. “−“ sections suggest low intensity (A450 < 0.15), indicating no appreciable binding. “+/−“ sections suggest moderate intensity (0.15 ≤ A450 ≤ 0.5 for native conditions), indicating moderate binding. The background signal from the sHBsAg wt serum was subtracted from the obtained results. The data represent the mean values from two independent experiments performed in duplicate.
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| MOUSE GROUP | 1a | 1b | 2a | 2b | 3a | 4a | 5a | 6a |
| sHBsAg_502–520 | + | + | + | + | + | + | + | + |
| sHBsAg_434–446 | - | - | - | - | - | - | - | - |
| sHBsAg_523–535 | + | + | + | + | + | + | + | + |
| sHBsAg_434–446_523–535 | + | + | + | + | + | + | + | + |
| sHBsAg_434–446_412–425 | + | + | + | + | + | + | - | + |
| sHBsAg_502–520_523–535 | + | + | + | + | + | + | + | + |
| sHBsAg_412–425 | + | + | + | + | + | + | - | + |
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| MOUSE GROUP | 1a | 1b | 2a | 2b | 3a | 4a | 5a | 6a |
| sHBsAg_502–520 | - | - | - | - | - | - | - | - |
| sHBsAg_434–446 | - | - | - | - | - | - | - | - |
| sHBsAg_523–535 | + | + | + | +/− | - | - | + | +/− |
| sHBsAg_434–446_523–535 | + | - | + | +/− | +/− | - | + | +/− |
| sHBsAg_434–446_412–425 | + | + | + | + | +/− | + | - | +/− |
| sHBsAg_502–520_523–535 | + | + | + | + | - | - | + | - |
| sHBsAg_412–425 | + | + | + | + | + | + | - | + |
Figure 4Amino acid alignment showing the sequence conservation of the regions 412–425, 434–446, 502–520, and 523–535 for full-length E1E2 (a) and HCVcc isolates (b) used in this study. The sequence derived from the HCV genotype 1a isolate H77C (GenBank accession number AF011751) is used as the reference and indicated on the top of each alignment. Other sequences are designated according to genotype (isolate). Amino acids conserved in reference to the H77C sequence are marked with dots. For 6a (HK6a), the boxed threonine is a cell culture adaptive substitution.
Figure 5Chimeric VLP-induced antibodies cross-neutralized different HCV genotypes. Viruses were incubated with IgGs purified from the sera of immunized mice and pooled for each experimental group. The antibodies were pre-incubated with viruses of HCV genotypes (isolates) 1a (TN), 1b (J4), 2a (J6), 2b (J8), 3a (S52), 4a (ED43), 5a (SA13), and 6a (HK6a) for 1.5 h, followed by incubation of Huh7.5 cells with antibody-virus mixes for 4.5 h. The neutralization effect (%) was determined relative to cultures infected with the respective viruses in the absence of antibodies. The data represent the mean values from three technical replicates and error bars indicate standard deviations. The dashed horizontal line marks 50% virus neutralization. Neutralization values of ≤0% are not shown; *, asterisks are added in cases where error bars and neutralization values are <0%.