The potential of a panel of synthetic HBsAg peptides as components of a synthetic hepatitis B vaccine was assessed. Each was used in turn as probes to analyse human immune responses to a licensed plasma-derived HBV vaccine. Both humoral and cellular responses were analysed with synthetic peptides representing residues 124-147 of the surface antigen of the virus (HBsAg) and residues 126-140 of the pre-S2 region. Antibody levels and affinities were assessed in radioimmunoassays with synthetic linear and cyclical forms of surface antigen peptides 124-137 and 139-147, with the gp30p25 polypeptide complex of HBsAg and with the linear pre-S2 peptide 126-140. Levels and affinities of antibodies to the antigens increased with time during immunization. However, antibodies binding the cyclical peptide representing amino acids 139 to 147 (C139) were present at higher levels and had higher affinities than were antibodies binding the other peptides, indicating that C139 more closely approximates a domain on the native antigen than do the other peptides. No humoral responses were measured with the pre-S2 peptide. Cellular responses were assessed by in vitro stimulation of peripheral blood lymphocytes by HBsAg and by the synthetic peptides. All vaccine recipients had demonstrable lymphocyte responsiveness to HBsAg after both second and third doses of the vaccine. Of the S and pre-S peptides used, only L124 failed to induce lymphocyte stimulation in all recipients. However, there were individual variations in both the time of initial responsiveness to peptides and in the level and time of maximal stimulation. Stimulation by native HBsAg particles, which corresponded to the appearance of anti-HBs antibody, preceded that observed using synthetic peptides. In all recipients, maximum stimulation indices with HBsAg were significantly higher than those observed with the peptides. In contrast to the absence of pre-S2 antibody, the lymphocytes from all recipients showed positive stimulation in response to the peptide representing residues 126-140 of the pre-S2 region. None of these individuals had antibodies to pre-S or an HB core peptide sequence nor did their lymphocytes respond to a synthetic peptide representing an HB core sequence.
Immune-stimulating complexes (iscoms) have been prepared containing the major S gene products (HBsAg) of the hepatitis B virus genome. Immunization of BALB/c mice with a single dose of hepatitis B iscoms in saline resulted in a high titre antibody response to HBsAg. In contrast, the original HBsAg preparation required an adjuvant to produce equivalent amounts of antibody. Analysis of sera from mice immunized with hepatitis B iscoms revealed antibodies directed against the major a determinants of HBsAg. High secondary antibody responses were observed in immunized animals previously inoculated with a sub-immunogenic dose of HBsAg indicating that hepatitis B iscoms may represent a suitable immunogen for use in individuals in whom a course of immunization with currently licensed hepatitis B vaccines has failed to produce a significant anti-HBs response.
A number of chemical disruption agents were assessed for their ability to dissociate HBsAg: anti-HBs immune complexes and to release both the antibody and antigen component in immunologically active forms. The most appropriate reagent was 0.1 M diethylamine which could elute up to 81% of anti-HBs antibody bound to solid-phase HBsAg and retained 93% of its antigen-combining activity. Complexes formed at various degrees of antigen excess and pre-exposed to 0.1 M diethylamine at room temperature for 18 h before ultracentrifugation on sucrose density gradients were effectively dissociated. The released antibody and antigen banded at their expected densities. However, the affinity of the isolated antibody for the detergent-solubilized polypeptide complex from purified HBsAg (gp30/p25) and cyclical peptides representing amino acids 124–137 and 139–147 of HBsAg were found to be considerably lower than that of the original pooled anti-HBs immunoglobulin used to form the immune complexes. These results suggest that the highest affinity antibody subpopulation may not be completely dissociated from the complex. Care should thus be exercised in the interpretation of the significance of the observed affinity of the antibody isolated by this and other similar dissociation procedures.
IgG, IgM and hepatitis B surface antigen (HBsAg) containing immune complexes (IC) were detected by the Clq and conglutinin solid phase assays in both HBsAg+ and HBsAg- groups of patients with primary hepatocellular carcinoma (HCC). No differences were observed between the two patient groups either in the levels of antigen non-specific and HBsAg specific complexes or in the immunoglobulin isotype in the complexes. The results show that HBsAg can occur in an IC form in the sera of patients classified as HBsAg- by sensitive commercial assays and provides evidence of a further association of hepatitis B virus (HBV) and HCC in antigen negative patients. Furthermore, the HBsAg IC in HCC patients differ from those in other HBV infected subjects in that they are preferentially detected by the Clq assay.
The affinity and level of antibody to hepatitis B surface antigen (anti-HBs) in recipients of a plasma-derived hepatitis B vaccine were determined with three different antigens. The first two antigens were prepared by chemical synthesis, to represent linear or cyclical forms of aminoacid sequences 139 to 147 of the major hepatitis B surface antigen (HBsAg) polypeptide. The binding of antibodies to these synthetic peptides was compared with that to a third antigen, prepared by solubilisation of the naturally occurring HBsAg, the basic component of the currently licensed hepatitis B vaccine in the United Kingdom. Antibody levels, expressed as total antibody combining sites (Abt) in fixed volumes of immune sera, increased throughout the course of immunisation and correlated with the development of antibody as measured by a commercially available radioimmunoassay. Abt values were similar for both forms of the synthetic peptide, although higher affinity values were found with the cyclical structure, which illustrates the importance of protein conformation in antibody responses to HBsAg. Antibody affinity for the three antigens increased progressively throughout the immunisation schedule but the pattern of affinity maturation varied according to the peptide used as an antigen probe and between subjects. Most subjects showed a significant rise in antibody affinity after the third (booster) dose of vaccine given at six months. The use of synthetic peptides allowed a quantitative and qualitative assessment of antibody responses to hepatitis B vaccine and confirmed that selected peptides corresponding to relevant HBsAg epitopes may be useful as alternative hepatitis B vaccines.
The measurement of the affinity of anti-HBs antibody in human sera using 3 HBsAg-related antigens is described. The antigens used were (i) a synthetic linear peptide corresponding to amino acids 139–147 of the major polypeptide of HBsAg, (ii) a cyclical form of this same peptide and (iii) a polypeptide complex of a 28,000 MW glycoprotein and a 23,000 MW protein from purified HBsAg. The method was established with a pooled human anti-HBs immunoglobulin preparation and a monoclonal anti-HBs antibody reactive to the ‘a’ determinant of HBsAg. The results indicate that both these antibody preparations effectively bind the 3 antigens with affinity values of between 2×106 to 9×107 litres/mole. However, the affinity of both antibody preparations for the cyclical form of the peptide was higher than for the linear form. The level of antibody (expressed as Abt, molar antigen binding sites) in the pooled human immunoglobulin for each of the 3 antigens was similar. Measurements of anti-HBs antibodies in the sera of recovered acute hepatitis B patients and from HBsAg negative chronic liver disease patients showed that the cyclical form of the antigen was bound with a higher affinity than the linear form. Affinity values of antibody in the sera of the latter group of patients was significantly lower (3×105 to 2.7×106 litres/mole) than those observed in sera from other individuals. The implication of these results in determining the importance of the measurement of affinity in the assessment of the efficacy of vaccines is discussed.