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Biomedical subjects

W Gerhard

Publications and source records attributed to W Gerhard.

At least 19 recordsLinked to original sources

Synthesis of a disulfide-linked octameric peptide construct carrying three different antigenic determinants.

In an effort to develop peptide vaccines against the influenza virus, we have successfully synthesized a disulfide-linked octameric homodimer that bears four copies of the influenza virus M2 protein ectodomain as well as two copies each of T-helper cell hemagglutinin epitopes, the I-E(d) restricted S1 and the I-A(d) restricted S2 fragments. Peptide attachment was via intermolecular disulfide formation from free sulfhydryl-bearing cysteine derivatives in solution. This reaction was efficient only when the amino-group of the cysteine was Fmoc-protected.

Amino Acid Sequence↗

Th cell-deficient mice control influenza virus infection more effectively than Th- and B cell-deficient mice: evidence for a Th-independent contribution by B cells to virus clearance.

The notion that MHC class I- restricted CD8+ T (Tc) cells are capable of resolving autonomously infections with influenza virus is based largely on studies testing virus strains of low pathogenicity in CD4+ T (Th) cell-deficient/depleted mice. To test whether this holds also for pathogenic strains and to exclude possible contributions by B cells, we analyzed PR8 infection in Th cell-depleted B cell-deficient (muMT) mice. These mice, termed muMT (-CD4), showed 80% mortality after infection with a small dose of PR8, which resulted in insignificant mortality in intact or Th cell-depleted BALB/c mice. Infection of muMT(-CD4) mice with a virus of low pathogenicity was resolved without mortality, but, compared with intact BALB/c mice, with delay of approximately 5 and approximately 20 days from lung and nose, respectively. The low mortality of Th cell-depleted BALB/c mice suggested that B cells contributed to recovery in a Th-independent manner. This was verified by showing that transfer of 8-10 million T cell-depleted naive spleen cells into muMT(-CD4) mice 1 day before infection reduced mortality to 0%. The mechanism by which B cells improved recovery was investigated. We found no evidence that they operated by improving the lung-associated Tc response. Treatment of infected muMT(-CD4) mice with normal mouse serum spiked with hemagglutinin-specific IgM did not reduce mortality. Taken together, the data show that 1) the Tc response is capable of resolving autonomously (in conjunction with innate defenses) influenza virus infections, although with substantial delay compared with intact mice, and 2) B cells can contribute to recovery by a Th-independent mechanism.

Animals↗

Treatment of influenza virus-infected SCID mice with nonneutralizing antibodies specific for the transmembrane proteins matrix 2 and neuraminidase reduces the pulmonary virus titer but fails to clear the infection.

Antibodies (Abs) can contribute to the cure of a viral infection, in principle, in two ways by: (1) binding to infected cells and thereby reducing the production of progeny virus [here termed cell-targeting (CT) activity] and (2) reacting with released progeny virus and thereby inhibiting the spread of the infection [termed virus neutralizing (VN) activity]. We have previously shown that a pulmonary influenza virus infection in severe combined immunodeficient mice could be cured by treatment of these mice with hemagglutinin (HA)-specific monoclonal Abs (mAbs) that mediated both of the above activities. Although the therapeutic activity of these mAbs correlated with their VN activity, it remained unclear how much their CT activity contributed to the Ab-mediated recovery process. To clarify this point, we tested the therapeutic efficacy of two mAbs of IgG2a isotype that mediated CT but no VN activity: one specific for the viral neuraminidase and the other for matrix protein 2. Both mAbs reduced pulmonary virus titers by 100- to 1000-fold but they failed to clear the infection, even when administered in combination and at therapeutically saturating concentrations. The results suggest that CT activity contributes significantly also to the therapeutic activity of HA-specific mAbs and further support the notion that VN-activity is required for Ab-mediated virus clearance.

Animals↗

Antigen processing of two H2-IEd-restricted epitopes is differentially influenced by the structural changes in a viral glycoprotein.

The factors that influence the intracellular location(s) of MHC class II-restricted epitope loading remain poorly understood. We present evidence that two I-Ed-restricted epitopes of the influenza hemagglutinin (HA) molecule, termed site 1 (S1; encompassing amino acid residues 107-119) and site 3 (S3; encompassing amino acid residues 302-313), are generated in distinct endocytic compartments. By means of an epitope-specific mAb, we show that S1 becomes detectable in late endocytic/lysosomal vesicles; using a mutant cell line, we also show that the presentation of S1 is dependent upon H2-DM expression. In contrast, S3; presentation is H2-DM-independent and appears in early endosomes as a result of acid-induced structural changes in HA. Presentation of both epitopes can be made H2-DM-independent by denaturing HA and made H2-DM-dependent by preventing the acid-induced conformational changes from occurring. These findings indicate that the structural context of a given epitope can determine where it is processed.

Animals↗

CD4+ T cells are ineffective in clearing a pulmonary infection with influenza type A virus in the absence of B cells.

Recovery from influenza virus infection is dependent on T cell functions which can be provided either by CD8 or CD4 T cells. To identity the functions involved in recovery promoted by CD4 T cells, we have studied the course of the infection in B-cell deficient micro MT mice which had been depleted of CD8 T cells by antibody treatment. Upon infection with PR8 [A/PR/8/34(H1N1)], such B- and CD8 T cell-deficient mice mounted strong CD4 T cell responses that were comparable in size and cytokine secretion to those seen in intact mice. Yet, these B- and CD8 T cell-deficient mice could not clear the infection, in contrast to (CD8-depleted) mice containing both B- and CD4 T cells. These findings indicate that the promotion of the T-dependent antibody response is an indispensable component in the CD4 T cell-dependent recovery process.

Animals↗

Influenza-specific immunity induced by recombinant Listeria monocytogenes vaccines.

In this study, we evaluate two Listeria monocytogenes strains that express influenza nucleoprotein (NP) sequences for their ability to protect against challenge with influenza-virus. The construction of one strain, which expresses only the Kd restricted NP epitope (NP 147-155), is described in this study; the other strain, which expresses the full NP sequence in the form of a fusion protein, has been described previously. The ability of the two strains to present the Kd restricted NP epitope in vitro and induce NP-specific CTL in vivo is also described. Mice immunized by the intravenous route with either strain cleared a subsequent (3 weeks post-immunization) influenza virus infection more rapidly as indicated by reduced virus titers in the lungs 5 days after challenge. Efficacy of both recombinant L. monocytogenes strains as vaccines in this system was equivalent and equal to that of recombinant vaccinia expressing NP.

Animals↗

Synthesis of alpha-gal epitopes on influenza virus vaccines, by recombinant alpha 1,3galactosyltransferase, enables the formation of immune complexes with the natural anti-Gal antibody.

Synthesis of the carbohydrate structure Gal alpha 1-3Gal beta 1-4GlcNAc-R (termed the alpha-gal epitope) on viral glycoproteins is of interest because of the large amounts of natural antibody (anti-Gal) produced in humans against this epitope. The presence of alpha-gal epitopes on inactivated virus or subviral vaccines is likely to enhance vaccine immunogenicity through in vivo complexing with anti-Gal and the subsequent targeting of the vaccine to Fcy receptors on antigen presenting cells. Our previous studies have demonstrated the increased in vitro immunogenicity of inactivated influenza virus complexed with the anti-Gal antibody. Here we demonstrate a method for engineering the expression of alpha-gal epitopes on influenza virus hemagglutinin (HA) by recombinant alpha 1,3galactosyltransferase (r alpha 1,3GT). We further demonstrate the formation of immune complexes between this de novo synthesized epitope and anti-Gal. HA has multiple N-acetyllactosamine structures which serve as excellent acceptors for r alpha 1,3GT. The luminal portion of marmoset alpha 1,3GT cDNA was produced in large amounts in the baculo virus system and isolated by affinity chromatography on nickel-Sepharose columns. r alpha 1,3GT effectively transferred galactose from UDP-Gal to the N-acetyllactosamine residues of HA on the intact virion or to isolated HA molecules. At least 3000 alpha-gal epitopes were de novo synthesized per virion. The natural anti-Gal antibody bound to these epitopes in ELISA, in western blots and in solution, forming distinct immune complexes. These data suggest that in vivo administration of such vaccines will result in their complexing with anti-Gal, and thus may lead to their increased immunogenicity.

Animals↗

Role of the B-cell response in recovery of mice from primary influenza virus infection.

Recovery from influenza virus infection has long been known to require an intact T-cell compartment. More recent studies revealed that CD8 and CD4 T cells can promote recovery through independent mechanisms. The CD4 T-cell-dependent recovery process appears to operate primarily through promotion of the T-dependent antibody response as B-cell-deficient microMT mice cannot recover from infection if they have been depleted of CD8 T cells. The potential therapeutic activity of the B-cell response was further studied by transfer of antibodies into infected SCID mice. At the dose of 200 micrograms/mouse, most antibodies (of IgG2a isotype) to the viral transmembrane protein HA cured the infection, while those to the transmembrane proteins NA and M2 suppressed virus titers in the lung but failed to clear the infection. The ability of passive antibody to resolve the infection was closely related to its prophylactic activity, suggesting that neutralization of progeny virus (VN) played an important role in the process of virus clearance in vivo, while reaction of antibodies with infected host cells contributed to but was insufficient, on its own, for cure. HA-specific antibodies of IgM and IgA isotypes were therapeutically ineffective against pulmonary infection, presumably because of a preferential delivery into the upper respiratory tract, while IgG exhibited highest activity against pulmonary and minimal activity against nasal infection. B cells appear to be of similar importance for recovery from primary infection as CD8 T cells.

Animals↗

A pulmonary influenza virus infection in SCID mice can be cured by treatment with hemagglutinin-specific antibodies that display very low virus-neutralizing activity in vitro.

We have previously shown that a pulmonary influenza virus infection in SCID mice can be cured by treatment with monoclonal antibodies (MAbs) specific for the viral transmembrane protein hemagglutinin (HA) but not for matrix 2. Since both types of MAbs react with infected cells but only the former neutralizes the virus, it appeared that passive MAbs cured by neutralization of progeny virus rather than reaction with infected host cells. To prove this, we selected a set of four HA-specific MAbs, all of the immunoglobulin G2a isotype, which reacted well with native HA expressed on infected cells yet differed greatly (>10,000-fold) in virus neutralization (VN) activity in vitro, apparently because of differences in antibody avidity and accessibility of the respective determinants on the HA of mature virions. Since the VN activities of these MAbs in vitro were differentially enhanced by serum components, we determined their prophylactic activities in vivo and used them as measures of their actual VN activities in vivo. The comparison of therapeutic and prophylactic activities indicated that these MAbs cured the infection to a greater extent by VN activity (which was greatly enhanced in vivo) and to a lesser extent by reaction with infected host cells. Neither complement- nor NK cell-dependent mechanisms were involved in the MAb-mediated virus clearance.

Animals↗

Enhancement of antigen presentation of influenza virus hemagglutinin by the natural human anti-Gal antibody.

Immunogenicity of inactivated virus or subviral vaccines may be enhanced by complexing with an IgG antibody. Such antibody would increase the uptake, processing and presentation of the vaccine's antigens by antigen presenting cells (APC), via the adhesion of the antibody-vaccine complex to Fc-receptors on macrophages and other APC. A natural antibody in humans, which may be generally exploited for this purpose, is the natural anti-Gal antibody. This antibody is ubiquitously produced as 1% of circulating IgG in humans and Old World primates, and it interacts specifically with the carbohydrate epitope Gal alpha 1-3 Gal beta 1-4 GlcNAc-R (termed the alpha-galactosyl epitope). This epitope is synthesized in large amounts in cells of nonprimate mammals and New World monkeys by the glycosylation enzyme alpha 1,3 galactosyltransferase. Here we describe in vitro studies on the ability of anti-Gal to bind to alpha-galactosyl epitopes on influenza virus propagated in mammalian cells, and to enhance presentation by APC of viral hemagglutinin antigenic determinants to specific helper T cell clones. The various approaches for achieving alpha-galactosyl epitope expression on virion and subviral vaccines are discussed.

Animals↗

Virus-neutralizing antibodies of immunoglobulin G (IgG) but not of IgM or IgA isotypes can cure influenza virus pneumonia in SCID mice.

The ability of monoclonal antibodies (MAbs) to passively cure an influenza virus pneumonia in the absence of endogenous T- and B-cell responses was investigated by treating C.B-17 mice, homozygous for the severe combined immunodeficiency (SCID) mutation, with individual monoclonal antiviral antibodies 1 day after pulmonary infection with influenza virus PR8 [A/PR/8/34 (H1N1)]. Less than 10% of untreated SCID mice survived the infection. By contrast, 100% of infected SCID mice that had been treated with a single intraperitoneal inoculation of at least 175 micrograms of a pool of virus-neutralizing (VN+) antihemagglutinin (anti-HA) MAbs survived, even if antibody treatment was delayed up to 7 days after infection. The use of individual MAbs showed that recovery could be achieved by VN+ anti-HA MAbs of the immunoglobulin G1 (IgG1), IgG2a, IgG2b, and IgG3 isotypes but not by VN+ anti-HA MAbs of the IgA and IgM isotypes, even if the latter were used in a chronic treatment protocol to compensate for their shorter half-lives in vivo. Both IgA and IgM, although ineffective therapeutically, protected against infection when given prophylactically, i.e., before exposure to virus. An Fc gamma-specific effector mechanism was not an absolute requirement for antibody-mediated recovery, as F(ab')2 preparations of IgGs could cure the disease, although with lesser efficacy, than intact IgG. An anti-M2 MAb of the IgG1 isotype, which was VN- but bound well to infected cells and inhibited virus growth in vitro, failed to cure. These observations are consistent with the idea that MAbs of the IgG isotype cure the disease by neutralizing all progeny virus until all productively infected host cells have died. VN+ MAbs of the IgA and IgM isotypes may be ineffective therapeutically because they do not have sufficient access to all tissue sites in which virus is produced during influenza virus pneumonia.

Animals↗

Heterosubtypic immunity to influenza type A virus in mice. Effector mechanisms and their longevity.

Immunity that cross-reacts between influenza type A viruses of distinct subtypes is called hetero(sub)typic (Het-I). We have studied Het-I by challenging PR8-immune mice with the heterosubtypic virus X31. Het-I did not prevent infection by X31 but, at its height, strongly aided in recovery. The nature of the effector mechanisms involved was investigated by simultaneous challenge with X31 and an immunologically unrelated influenza type B virus and by depleting individual lymphocyte subsets in PR8-immune mice before challenge. The study showed the following: 1) The effector mechanisms were intimately associated with immune recognition events. 2) In the nose, depletion of CD8+ or CD4+ T cells led to partial reduction of Het-I, and simultaneous depletion of both T cell subsets abrogated Het-I almost completely. This T cell-mediated immunity was short lived and had disappeared 4 to 5 mo after induction. 3) In trachea and lung, depletion of CD8+ T cells led to a partial reduction of Het-I, whereas depletion of CD4+ T cells was without significant effect. The CD8-mediated component appeared short lived, whereas the residual immunity (in CD4/8-depleted mice) was long lived and persisted past 7 mos after induction. 4) Depletion of NK cells did not significantly reduce the strength of Het-I in either nose or lung. In conclusion, the study shows that Het-I in this system is mediated by a complex combination of immune mechanisms that differ, in part, between upper and lower respiratory tract.

Animals↗

Presentation of a viral T cell epitope expressed in the CDR3 region of a self immunoglobulin molecule.

Synthetic peptides corresponding to microbial epitopes stimulate T cell immunity but their immunogenicity is poor and their half-lives are short. A viral epitope inserted into the complementarity-determining region 3 (CDR3) loop of the heavy chain of a self immunoglobulin (Ig) molecule was generated from the Ig context and was presented by I-Ed class II molecules to virus-specific, CD4+ T cells. Chimeric Ig-peptide was presented 100 to 1000 times more efficiently than free synthetic peptide and was able to prime virus-specific T cells in vivo. These features suggest that antigenized Ig can provide an improved and safe vaccine for the presentation of microbial and other peptides.

Amino Acid Sequence↗

Mutations in or near the fusion peptide of the influenza virus hemagglutinin affect an antigenic site in the globular region.

We previously described a monoclonal antibody (Y8-10C2) that binds influenza virus hemagglutinin (HA) monomers but not native trimers. In this study, we demonstrated that Y8-10C2 binds to the globular domain of HA and found evidence that its epitope is located at the interface of adjacent subunits. We further showed that at elevated temperatures, the Y8-10C2 epitope is transiently exposed in trimers for antibody binding. Introduction of intrasubunit chemical cross-links into HA reversibly inhibited both Y8-10C2 binding to trimers at elevated temperatures and viral fusion activity, indicating that exposure of the epitope requires the normal conformational flexibility of the molecule. Prolonged incubation of Y8-10C2 with virus at an elevated temperature resulted in neutralization of viral infectivity, allowing selection of neutralization-resistant virus mutants. Mutants were divided into two classes based on a radioimmunoassay in which the virus is attached to polyvinyl: those with reduced affinity for Y8-10C2 or other monoclonal antibodies specific for the globular domain and those with no alteration in their interaction with Y8-10C2 or other antibodies. DNA sequencing of HA genes revealed that the first type of mutants possessed single amino acid substitutions in the Y8-10C2 epitope itself, while remarkably, the second type of mutants possessed single amino acid substitutions in or near the fusion peptide of the HA, which is located in the stem of the HA at a considerable distance from the Y8-10C2 epitope. These findings indicate that the conformational flexibility of the HA affects its antigenicity and that single amino acid substitutions in or near the fusion peptide influence the flexibility of the globular domains.

Antibodies, Monoclonal↗

Expression and functional properties of mouse B7/BB1 using a fusion protein between mouse CTLA4 and human gamma 1.

We report the construction and expression of a fusion protein made from the extracellular portion of the mouse CTLA-4 gene and the constant region of human IgG1. This fusion protein behaves like an antibody to mouse B7/BB1, binding to activated B cells and purified dendritic cells. In addition, we found it to bind to activated T cells. The fusion protein interfered with the ability of antigen-pulsed antigen-presenting cells to induce proliferation of T-cell clones, although the degree of inhibition varied. These findings are discussed in the light of the physiological activation of T cells in secondary lymphoid organs.

Abatacept↗

Specific low-affinity recognition of major histocompatibility complex plus peptide by soluble T-cell receptor.

The T-cell receptor is necessary and sufficient for recognition of peptides presented by major histocompatibility complex molecules. Other adhesion molecules, like CD4 or CD8, play an auxiliary role in antigen recognition by T cells. Here we analyse T-cell receptor (TCR) binding using a soluble rather than a cell-bound receptor molecule. A TCR-immunoglobulin chimaera is constructed with the variable and the first constant regions of both the TCR alpha- and beta-chains linked to the immunoglobulin light-chain constant regions. This soluble TCR is expressed, assembled and secreted as an alpha beta heterodimer by a myeloma cell line transfected with the recombinant genes. Furthermore, the soluble TCR is biologically active: it specifically inhibits antigen-dependent activation of the relevant T-cell clones and thus discriminates between proper and irrelevant peptides presented by major histocompatibility complex molecules.

Animals↗