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N S Greenspan

Publications and source records attributed to N S Greenspan.

At least 19 recordsLinked to original sources

All-D peptides recognized by an anti-carbohydrate antibody identified from a positional scanning library.

Monoclonal antibodies recognize antigens with high affinity and specificity, but the structural basis for molecular mimicry remains unclear. It is often assumed that cross-reactive antigens share some structural similarity that is specifically recognized by a monoclonal antibody. Recent studies using combinatorial libraries, which are composed of millions of sequences, have examined antibody cross-reactivity in a manner entirely different from traditional epitope mapping approaches. Here, peptide libraries were screened against an anti-carbohydrate monoclonal antibody for the identification of peptide mimics. Positional scanning libraries composed of all-l or all-d hexapeptides were screened for inhibition of monoclonal antibody HGAC 39.G3 binding to an antigen displaying N-acetyl-d-glucosamine (GlcNAc) residues on a polyrhamnose backbone. Inhibitory activity by mixtures from the all-d hexapeptide library was greater than the activity from the all-l libraries. The most active d-amino acid residues defined in each of the six positions of the library were selected to prepare 27 different individual hexapeptides. The sequence Ac-yryygl-NH2 was specifically recognized by mAb HGAC 39.G3 with a relative affinity of 300 nM when measured in a competitive binding assay. The contributions to overall specificity of the residues of the all-d peptide (Ac-yryygl-NH2) in binding to mAb HGAC 39.G3 were examined with a series of truncation, l and d-amino acid substitution, and retro analogs. Dimeric forms of the all-d peptide were recognized with tenfold to 100-fold greater affinities relative to the monomer. The all-d peptide was found to inhibit mAb HGAC 39.G3 binding to an anti-idiotype antibody with approximately 1000-fold greater affinity than GlcNAc. As demonstrated here, the study of immune recognition using combinatorial chemistry may offer new insights into the molecular basis of cross-reactivity.

Amino Acid Sequence

Gamma 3 gene-disrupted mice selectively deficient in the dominant IgG subclass made to bacterial polysaccharides undergo normal isotype switching after immunization with polysaccharide-protein conjugate vaccines.

Bacterial polysaccharides (PS) are T-independent type 2 Ags that elicit restricted Ab responses of IgM and IgG3 in mice and IgM and predominantly IgG2 in humans. Immunodeficiency in the dominant IgG subclass made to PS is associated with chronic sinus and pulmonary infections with PS-encapsulated bacteria. To elucidate the biologic role of the dominant IgG subclass in the immune response to PS and to make an animal model of human IgG subclass deficiency, we generated mice with a targeted disruption of the exon encoding the CH1 domain of the gamma 3 heavy-chain constant region gene. Homozygotes had no detectable serum IgG3, and their splenocytes did not produce IgG3 after LPS stimulation. IgG3(-/-) mice immunized with PS from Pseudomonas aeruginosa LPS O-side chain or Streptococcus pneumoniae type 19F capsule did not produce any IgG3 anti-PS Abs, in contrast to wild-type mice in which IgG3 was the major IgG subclass. Immunizing both wild-type and IgG3(-/-) mice with 19F PS-protein conjugate elicited IgG1 Abs. We conclude that IgG3(-/-) mice have a selective deficiency in the dominant murine IgG subclass made to T-independent type 2 Ags and may be a useful animal model of IgG subclass deficiency. In addition, we show that the anti-PS Ab class switching to IgG1 that occurs when mice are immunized with a PS-protein conjugate vaccine does not require sequential Ig expression or an intact, upstream gamma 3 heavy-chain gene.

Animals

Mitogenic synthetic polynucleotides suppress the antibody response to a bacterial polysaccharide.

Unmethylated bacterial DNA containing a high frequency of the CpG motif, is mitogenic and induces T-cell independent, murine B-cell proliferation. These stimulatory effects are also induced by synthetic oligonucleotides that contain one or more unmethylated CpG dinucleotides (CpG oligo). Such mitogenicity is not seen with highly methylated vertebrate DNA, which has a lower prevalence of the CpG motif than bacterial DNA. Due to their stimulatory effects, CpG oligo have been proposed for use as vaccine adjuvants. In order to determine if a synthetic CpG oligo that was stimulatory for B-cell proliferation could augment the murine antibody response to protective bacterial polysaccharide epitopes (Pseudomonas aeruginosa LPS-O polysaccharide side chain; high-molecular-weight polysaccharide or high-MW PS), BALB/c mice were injected with mitogenic doses of CpG oligo simultaneously with high-MW PS, and antibody titers were measured by ELISA weekly for 4 weeks. Controls received PBS, a nonstimulatory control oligo plus PS, CpG alone, or PS alone. Despite evidence of B-cell mitogenicity and an increase in total IgM in CpG oligo-treated mice, CpG oligo treatment plus PS significantly decreased the high-MW PS antibody response compared to PS alone. The blunting of the anti-PS antibody response could be eliminated by vaccinating the animals with PS prior to CpG oligo. We conclude that despite in vitro and in vivo evidence of B-cell proliferation, this CpG oligo reduces PS-specific antibody responses in an animal model when given simultaneously with a bacterial polysaccharide. Based on results in this model, oligonucleotides containing stimulatory unmethylated CpG dinucleotides may not be useful adjuvants when given simultaneously with bacterial PS vaccines.

Adjuvants, Immunologic

Bispecific antibodies overcome the opsonin-receptor mismatch of cystic fibrosis in vitro: restoration of neutrophil-mediated phagocytosis and killing of Pseudomonas aeruginosa.

Inflammation and infection associated with bacterial pathogens, primarily Pseudomonas aeruginosa (Pa), are the primary causes of morbidity and mortality for cystic fibrosis (CF) patients. CF patients may be predisposed to these bacterial infections by a defect in phagocytosis due to "opsonin-receptor mismatch," in which a complement receptor (CR1) and an important opsonin (iC3b) are destroyed by proteolytic enzymes. We show that opsonin-receptor mismatch can be mitigated in vitro using a bispecific Ab (bsAb) to cross-link neutrophils via the beta-chain of leukocyte integrins (CD18) to bacterial epitopes or C3d on opsonized Pa. Two chemically cross-linked bsAb were constructed with mAb specific for C3d (or the O-specific side chain of Fisher Devlin Immunotype 1 Pa) and CD18. Using an in vitro model of elastase-mediated opsonin-receptor mismatch, these bsAb specifically enhanced Pa phagocytosis and killing, with the anti-C3d-containing bsAb restoring the levels of phagocytosis to approximately those for the non-elastase-treated opsonic control. These results encourage the further investigation of bsAb as therapeutic agents for bacterial infection in the lungs of CF patients.

Antibodies, Bispecific

Functional dissociation of CD8 alpha's Ig homologue and connecting peptide domains.

The contribution of the CD8 alpha.IgV homologue domain to class I MHC binding was evaluated using a series of chimeric human CD8 alpha:Fc polypeptides incorporating alternative CD8 alpha extracellular domain components. Using a nonisotopic cellfree physical binding assay, those Fc chimeras encompassing the CD8 alpha.IgV homologue domain only (dissociated from the 48-amino acid CD8 alpha connecting peptide) were shown to retain the capacity of the complete CD8 alpha extracellular domain to bind to a recombinant soluble class I MHC alpha 3 domain unit or to intact class I MHC. The specificity of the CD8 alpha:class I MHC alpha 3 domain interaction was verified by mAb and soluble polypeptide blocking experiments. Furthermore, co-precipitation of an Fc chimera incorporating only the CD8 alpha.IgV homologue domain and a recombinant soluble class I MHC alpha 3 domain unit was accomplished. In addition, a glycosylphosphatidylinositol (GPI)-modified variant of the CD8 alpha.IgV homologue domain was generated via chimerization with the GPI signal sequence from decay-accelerating factor. GPI anchorage for this truncated CD8 alpha polypeptide was verified, and its capacity to promote intercellular adhesion through class I MHC binding was shown in a cell:cell binding assay. The findings indicate that the CD8 alpha.IgV homologue domain acts as an independent structural unit when dissociated from the CD8 alpha connecting peptide, and in so doing retains class I MHC binding capacity. This further establishes the principle that Ig superfamily domains from receptor:counter-receptor pairs can interact with each other as isolated units, providing an experimental path for tailoring therapeutically useful IgSF protein derivatives.

Amino Acid Sequence

Complementarity, specificity and the nature of epitopes and paratopes in multivalent interactions.

Structural elements of an antibody (Ab) or antigen (Ag) distant from the actual sites mediating contact between Ab and Ag can exert substantial influence on binding to, and discrimination among, multivalent targets. Consequently, multivalent molecules that express the same number of identical binding sites, but that differ in other structural features, can exhibit differences in their ability to discriminate between multivalent ligands. Here, Neil Greenspan and Laurence Cooper review evidence for these effects, and explore implications of the conclusion that effective specificity in multivalent interactions is not completely determined by the degree of complementarity between epitopes and paratopes.

Antigen-Antibody Reactions

Roles of immunoglobulin valency and the heavy-chain constant domain in antibody-mediated downregulation of Sindbis virus replication in persistently infected neurons.

Clearance of infectious Sindbis virus from neurons is mediated by antibody to the E2 glycoprotein. Properties of the antibody important for downregulation of Sindbis virus replication are unknown. Immunoglobulin isotypes and valency determine many biological properties of antibodies. An immunoglobulin G1 (IgG1) isotype switch mutant and F(ab')2 and Fab fragments of IgG3 monoclonal antibody 209 were prepared and tested for clearance of infectious virus from persistently infected rat dorsal root ganglion neurons in vitro. IgG1, IgG3, and IgG3-derived F(ab')2 fragments were similarly efficacious, while IgG3-derived Fab fragments had no effect on virus replication. Cross-linking of Fab with secondary antibodies restored antiviral activity. Therefore, we found no evidence that IgG subclass plays a role in control of intracellular Sindbis virus replication. However, bivalency appears to be crucial for the ability of E2-specific IgG molecules to mediate clearance of infectious virus from neuron cells, suggesting that cross-linking of E2 molecules is essential.

Animals

Cytokeratin peptide SFGSGFGGGY mimics N-acetyl-beta-D-glucosamine in reaction with antibodies and lectins, and induces in vivo anti-carbohydrate antibody response.

Recently, we found that human anti-GlcNAc mAbs reacted with keratin from human skin and recognized specific peptide epitopes of human cytokeratin 14. Our data demonstrate that anti-keratin Ab responses in mice might be driven by Ags bearing terminal O-linked GlcNAc residues. To determine if mouse anti-GlcNAc mAbs recognized peptide epitopes of keratin, several mouse anti-GlcNAc mAbs were reacted with a panel of overlapping synthetic decapeptides of the entire amino acid sequence of human cytokeratin 14 in the ELISA. Results of the ELISA demonstrated that three mAbs, HGAC 54, HGAC 78, and 101.4.1, expressed maximal binding activity to keratin peptide B1 with the amino acid sequence SFGSGFGGGY. In addition, we found that mouse anti-cytokeratin 14 mAb CKB-1 recognized the same peptide and expressed anti-GlcNAc activity as well. Keratin peptide B1 was shown to react not only with anti-GlcNAc mAbs but also with several lectins such as wheat germ agglutinin, Datura stramonium lectin, Lycopersicon esculentum lectin, Solanum tuberosum lectin, and lectin from Wisteria floribunda. Reaction of the lectins with solid-phase keratin peptide B1 was inhibited by soluble GlcNAc and was not inhibited by glucose demonstrating specificity of binding. Using a panel of 24 synthetic keratin B1 peptides, each with a single amino acid substitution, we found that aromatic-aromatic and hydrophobic interactions were the major driving forces in the stabilization of the peptide-protein complexes. Finally, we demonstrated that immunization of BALB/c mice with peptide B1 conjugated to BSA induced an anti-GlcNAc Ab response. Results of our experiments indicated that certain peptides may express functional activity similar to GlcNAc and induce in vivo anti-carbohydrate Ab responses.

Acetylglucosamine

Alloantigenic recognition of artificial glycosyl phosphatidylinositol-anchored HLA-A2.1.

Alloantigen presentation by GPI-reanchored variants of the human class I MHC molecule HLA-A2.1 was studied in human cellular systems. To this end, we generated chimeric coding sequences for two GPI-modified HLA-A2.1 heavy chain derivatives. In these chimeras, the coding sequence for the HLA-A2.1 heavy chain was fused in-frame to alternative overlapping sequences from the 3'-end of human DAF containing the GPI-modification signal sequence. The encoded polypeptides HLA-A2.1:DAF-S and HLA-A2.1:DAF-L differed by 53 amino acids of additional DAF sequence in the latter. Both were detected on stably transfected C1R cell surfaces by HLA-A2.1-specific mAb, and their GPI-modification was confirmed by PI-PLC enzymatic cleavage. Immunoprecipitation analysis of surface-biotinylated C1R transfectants revealed heterodimeric association for both HLA-A2.1:DAF-L and HLA-A2.1:DAF-S heavy chains with beta 2m. Alloantigenic stimulation by, and cytotoxic recognition of, both HLA-A2.1:DAF-S/C1R and HLA-A2.1/CIR cells was observed; however, HLA-A2.1:DAF-L/C1R cells could not serve as allostimulators or allotargets. These findings establish that polymorphic human class I MHC molecules can function, when artificially GPI-reanchored, as alloantigenic targets. Moreover, the data suggest that the sequence bridging the HLA-A2 extracellular domain and the membrane can influence alloantigenic presentation.

Animals

Variable domain-identical antibodies exhibit IgG subclass-related differences in affinity and kinetic constants as determined by surface plasmon resonance.

We have analysed the binding of variable domain-identical mouse monoclonal antibodies (mAb) of the IgG3, IgG1 and IgG2b subclasses, as well as F(ab')2 fragments derived from the IgG3 and IgG1 mAb, to a multivalent glycoprotein target. Using a biosensor device (BIAcore, Pharmacia Biosensor) that measures the mass of the antibody (or other receptor molecule) deposited on a sensor chip displaying the relevant epitopes, we found that the IgG3 mAb binds more effectively than the other antibody species at a high but not a low epitope density. The greater functional affinity associated with the IgG3 mAb, at high epitope density, was correlated with both slower dissociation rate constants and faster association rate constants in comparison with the IgG1 and IgG2b mAb and the F(ab')2 fragments derived from the IgG3 and IgG1 mAb. Evidence for slower dissociation kinetics for the IgG3 mAb versus the IgG1 and IgG2b mAb was also obtained by ELISA and flow cytometry. These results demonstrate that: (1) differences in heavy chain constant (CH) domains can significantly influence apparent functional affinity for multivalent antigen, as determined without the use of covalently modified primary or secondary antibodies; (2) differences in CH domains can alter both association and dissociation rate constants for interactions between IgG antibodies and multivalent antigen; and (3) these effects of CH domains depend on epitope density. The effect of constant region differences on the apparent association rate constants suggests new approaches for achieving better binding or functional effectiveness through antibody engineering.

Acetylglucosamine

Monitoring the formation of soluble immune complexes composed of idiotype and anti-idiotype antibodies by electron microscopy.

We have previously used immunoelectron microscopy (IEM) to generate a three-dimensional map of idiotypic (Id) and isotypic epitopes on the Fab arms of HGAC 39 (Roux et al., 1987, Proc. natn. Acad. Sci. U.S.A. 84, 4984-4988), a mouse IgG3 monoclonal antibody (Mab). In this report, we analyse the geometry of the various types of immune complexes formed by the interaction of HGAC 39 with Mab directed against four mapped epitopes. Moreover, by sampling of reaction mixtures over time, we show that the kinetics of each of the subpopulations of immune complexes, as defined by geometric configuration, can be determined. The data show that for each antibody (Ab)-HGAC 39 combination the rate of immune complex formation was greatest during the first 1.5-3.5 min but that additional complexes formed through the remainder of the half hour assay period. As anticipated, complexes composed of even number units predominated (primarily dimers and tetramers) and most of these were in the form of closed rings. The data also suggest that the location and orientation of the epitopes on HGAC 39 to which the monoclonal antibodies were bound has an influence on the types of immune complexes generated. Specifically we observed that those anti-idiotype Abs that bind to the distal tip of Fab arms (i.e. in the CDR) are less likely to produce bivalently associated ringed dimers than antibodies that bind to epitopes that are proximal to the CDR and that project laterally from the surface of the Fab arms. These data are interpreted in terms of restrictions on hinge mediated flexibility and steric inhibition between adjacent Fab arms on HGAC 39.

Animals

Protein transfer of preformed MHC-peptide complexes sensitizes target cells to T cell cytolysis.

Recombinant GPI-anchored HLA-A2.1 (HLA-A2.1-GPI/beta 2m) was used as a protein transfer vehicle to deliver a hepatitis B virus antigenic peptide to the surfaces of cytotoxic T cell targets. Empty HLA-A2.1-GPI/beta 2m was first produced in D. melanogaster cotransfectants and immunoaffinity purified. Cell coating with HLA-A2.1-GPI/beta 2m was shown to occur rapidly, and to be protein concentration dependent. Protein-transferred HLA-A2.1-GPI/beta 2m effectively presented a hepatitis B virus peptide to peptide-specific HLA-A2.1-restricted T cell clones in cytotoxicity assays. Protein transfer of functional GPI-modified class I MHC-antigenic peptide complexes represents a novel strategy for delivering functional antigenic complexes to cell surfaces that bypasses limitations of gene transfer and permits control of antigenic peptide densities at cell surfaces.

Animals

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Financing, Government

A subset of mouse monoclonal antibodies cross-reactive with cytoskeletal proteins and group A streptococcal M proteins recognizes N-acetyl-beta-D-glucosamine.

It is well known that antibodies to N-acetyl-beta-D-glucosamine (GlcNAc) cross-react with cardiac valves, skin, and other host tissues. However, molecular targets of these antibodies have not been identified. For this reason, anti-streptococcal mAb cross-reactive with group A streptococci and heart proteins were studied for their reactivity with GlcNAc, the immunodominant epitope of group A streptococcal carbohydrate. Characterization of the mAb that recognized GlcNAc revealed that each mAb had its own unique antigen-binding profile and pattern of immunofluorescence on rat heart cells. In the ELISA and Western blot these mAb reacted with cytoskeletal and heart proteins such as actin, keratin, myosin, and vimentin, as well as with streptococcal recombinant M5 and M6 proteins. Binding of the mAb to cytoskeletal proteins was inhibited by GlcNAc conjugated with BSA in a dose-dependent manner, and the mAb preferentially reacted with high-density GlcNAc-BSA conjugates. Antigenic determinants on the proteins recognized by the mAb were resistant to sodium periodate and N-acetylglucosaminidase treatment, suggesting reactivity with peptide and not carbohydrate structures. On reaction of the mAb with a panel of synthetic streptococcal, viral, and myosin peptides, one of the mAb, 49.8.9, was found to react most strongly with a synthetic peptide sequence synthesized from the coxsackievirus B3 capsid protein VP1, which shows homology with and cross-reacts with sequences in the streptococcal M6 protein and human cardiac myosin. This most interesting mAb, previously shown to neutralize coxsackie viruses, recognized the amino acid sequence RRKLEFF, which may mimic the GlcNAc epitope. The data collected show that we have identified a new group of multireactive autoantibodies that recognize GlcNAc and cytoskeletal proteins, as well as defined peptide epitopes.

Acetylglucosamine

Role of heavy chain constant domains in antibody-antigen interaction. Apparent specificity differences among streptococcal IgG antibodies expressing identical variable domains.

In this report, we examine the influence of CH domains on antibody specificity, in the context of variable epitope density on bacteria and synthetic glycoconjugates. Hybridomas secreting IgG1 and IgG2b mAb, specific for the N-acetyl-glucosamine (GlcNAc) residues of streptococcal group A carbohydrate, were previously generated from a hybridoma secreting a mouse IgG3 mAb. We show that these three mAb have identical H and L chain V domains, as determined by 1) cDNA sequencing, 2) binding to soluble Ag, and 3) binding to nine monoclonal anti-idiotopes. Nevertheless, the IgG3 mAb binds more effectively than the V region-identical IgG1 or IgG2b mAb to each of three strains of group A streptococci that display different amounts of terminal GlcNAc residues on their cell walls. The magnitude of the subclass-associated differential in binding varies with the target strain, and, whereas the IgG3 mAb binds best to the strain expressing an intermediate amount of GlcNAc, the IgG1 and IgG2b mAb and IgG3-derived F(ab')2 fragments bind best to the strain expressing the highest amount of GlcNAc. The IgG3 mAb also binds better than the IgG1 and IgG2b mAb to solid-phase GlcNAc50-BSA, but the IgG2b mAb binds best to otherwise identical conjugates with lower ratios of GlcNAc to BSA (20:1, 10:1, 5:1, and 1:1). These results suggest that epitope density can significantly influence the magnitude of IgG subclass-associated binding differences, and that structural differences in the CH regions, particularly the CH2 and CH3 domains, can influence the apparent specificities of IgG molecules for multivalent Ag.

Acetylglucosamine

Variable region-identical monoclonal antibodies of different IgG subclass directed to Pseudomonas aeruginosa lipopolysaccharide O-specific side chain function differently.

Antibodies directed to polysaccharide (PS) antigens of bacteria are crucial to host immunity to infection. The isotypes of antibodies made to PS, however, are restricted primarily to IgM and IgG1 and IgG2 in man and to IgM and IgG3 in mice. Using sequential sublining and sib selection, an IgG1 murine monoclonal antibody that has variable regions identical to those of a parent IgG3 monoclonal antibody directed to the high-molecular-weight component of the O-specific side chain of Pseudomonas aeruginosa immunotype 1 lipopolysaccharide was derived. These antibodies differed markedly in their antigen binding and effector functions. IgG3 was superior in binding to multivalent PS both in purified and whole bacterial form, fixation of the third component of complement to the bacterial surface, and opsonization of P. aeruginosa for uptake by both murine and human phagocytes. These data suggest that the IgG subclass of these murine anti-LPS antibodies is an important determinant of both avidity for multivalent antigen and biologic function.

Animals